UPC8119T NEC | Alldatasheet
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The information in this document is subject to change without notice. Before using this document, please confirm that this is the latest version. BIPOLAR ANALOG INTEGRATED CIRCUITS µµµµPC8119T, µµµµPC8120T VARIABLE GAIN AMPLIFIER SILICON MMIC FOR TRANSMITTER AGC OF DIGITAL CELLULAR TELEPHONE 1996© Document No. P11027EJ2V0DS00 (2nd edition) Date Published October 1998 N CP(K) Printed in Japan DATA SHEET The mark shows major revised points.
DESCRIPTION
The µPC8119T and µPC8120T are silicon monolithic integrated circuits designed as variable gain amplifier. Due to 100 MHz to 1.9 GHz operation, these ICs are suitable for RF transmitter AGC stage of digital cellular telephone. Two types of gain control let users choose in accordance with system design. 3 V supply voltage and mini mold package contribute to make system lower voltage, decreased space and fewer components. The µPC8119T and µPC8120T are manufactured using NEC’s 20 GHz fT NESAT TM III silicon bipolar process. This process uses silicon nitride passivation film and gold electrodes. These materials can protect chip surface from external pollution and prevent corrosion / migration. Thus, this IC has excellent performance, uniformity and reliability.
FEATURES
- Recommended operating frequency : f = 100 MHz to 1.92 GHz
- Supply voltage : V CC = 2.7 to 3.3 V
- Low current consumption : I CC = 11 mA TYP . @ V CC = 3.0 V
- Gain control voltage : V AGC = 0.6 to 2.4 V (recommended)
- Two types of gain control : µPC8119T = VAGC up vs. Gain down (Forward control) µPC8120T = VAGC up vs. Gain up (Reverse control)
- AGC control can be constructed by external control circuit.
- High-density surface mounting
APPLICATIONS
- 1.9 GHz cordless telephone (PHS base-station and so on)
- 800 MHz to 900 MHz or 1.5 GHz Digital cellular telephone (PDC800M, PDC1.5G and so on)
ORDERING INFORMATION
Part Number Package Marking Supplying Form Gain Control Type µPC8119T-E3 C2M Forward control µPC8120T-E3 6-pin minimold C2N Embossed tape 8 mm wide. 1, 2, 3 pins face to perforation side of the tape. Qty 3 kp/reel. Reverse control Remark To order evaluation samples, please contact your local NEC sales office. (Part number for sample order: µPC8119T, µPC8120T) Caution Electro-static sensitive devices
µµµµPC8119T, µµµµPC8120T PIN CONNECTIONS Pin No. Pin Name
1 INPUT
(Top View) Marking is a example for PC8119T. C2M (Bottom View) µ VARIABLE GAIN AMPLIFIER PRODUCT LINE-UP Part No. V CC (V) I CC (mA) V AGC (V) V AGC up vs.Gain f (GHz) P O (1 dB) Features Remark Typical performance. Please refer to ELECTRICAL CHARACTERISTICS in detail. To know the associated product, please refer to each latest data sheet. SYSTEM APPLICATION EXAMPLE SW ÷N PLL PLL I QDEMO I Q PC8119T or PC8120T PA TX RX LNA 90° µ µ φ
µµµµPC8119T, µµµµPC8120T PIN EXPLANATION Pin No. Pin Name Applied Voltage V Pin Voltage V Note Function and Applications Internal Equivalent Circuit 1 IN – 1.2 RF input pin. This pin should be coupled with capacitor (eg 1000 pF) for DC cut. This pin can be input from 50 Ω impedance signal source without matching circuit. GND 0 – Ground pin. This pin should be connected to system ground with minimum inductance. Ground pattern on the board should be formed as wide as possible.
4 OUT Voltage
– RF output pin. This pin is designed as open collector of high impedance. This pin must be externally equipped with matching circuits. Bias circuit Control circuit 5V CC 2.7 to 3.3 – Supply voltage pin. This pin must be externally equipped with low pass filter (eg π type) in order to suppress leakage from input pin. This pin also must be equipped with bypass capacitor (eg 1000 pF) to minimize ground impedance. Gain control pin. The relation between product number and control performance is shown below; Part No. V AGC up vs. Gain µPC8119T down µPC8120T up 6V AGC 0 to 3.3 – Control circuit Note Pin voltage is measured at VCC = 3.0 V.
µµµµPC8119T, µµµµPC8120T ABSOLUTE MAXIMUM RATINGS Parameter Symbol Conditions Ratings Unit Supply Voltage V CC TA = +25°C 3.6 V Gain Control Voltage V AGC TA = +25°C 3.6 mA Operating Ambient Temperature TA −40 to +85 °C Storage Temperature T stg –55 to +150 °C Power Dissipation of Package PD Mounted on double-sided copper-clad 50 × 50 × 1.6 mm epoxy glass PWB T A = +85°C 280 mW RECOMMENDED OPERATING CONDITIONS Parameter Symbol MIN. TYP. MAX. Unit Notice Supply Voltage V CC 2.7 3.0 3.3 V Same voltage should be applied to 4 and 5 pins. Gain Control Voltage V AGC 0 . 6–2 . 4V I AGC ≤ 0.1 mA – – –18 Padj ≤ –60 dBc @ Δf = ±50 kHz Note 1 Input Level P in – – –10 dBm Padj ≤ –60 dBc @ Δf = ±600 kHz Note 2 Operating Ambient Temperature TA –40 +25 +85 °C Operating Frequency f 100 – 1920 MHz With external output-matching AGC Pin Drive Current I AGC 0.5 – – mA V AGC ≤ 3.3 V Notes 1. Adjacent Channel Interference (Padj) wave form condition: f = 950 MHz or 1440 MHz, π/4QPSK modulation signal, data rate = 42 kbps, rolloff ratio = 0.5, PN9 bits (pseudo random pattern) 2. Adjacent Channel Interference (Padj) wave form condition: f = 1900 MHz, π/4QPSK modulation signal, data rate = 384 kbps, rolloff ratio = 0.5, PN9 bits (pseudo random pattern)
µµµµPC8119T, µµµµPC8120T
ELECTRICAL CHARACTERISTICS
(Unless otherwise specified, TA = +25°C, VCC = Vout = 3.0 V, ZS = ZL = 50 ΩΩΩΩ , External matched output port) µPC8119T µPC8120T Parameter Symbol Test Conditions Unit Circuit Current I CC No signal, ICC = IVCC + Iout 7.5 11 15 7.5 11 15 mA Maximum Power Gain G PMAX f = 950 MHz, Pin = –30 dBm f = 1440 MHz, Pin = –30 dBm 12.5 10.5 10.5 13.5 15.5 16.5 dB Gain Control Range Note GCR f = 950 MHz, Pin = –30 dBm f = 1440 MHz, Pin = –30 dBm –d B Noise Figure NF f = 950 MHz, G PMAX f = 1440 MHz, GPMAX 8.5 7.5 11.5 10.5 9.0 7.5 10.5 dB Isolation ISL f = 950 MHz, G PMAX f = 1440 MHz, GPMAX dB Input Return Loss RL in f = 950 MHz, GPMAX f = 1440 MHz, GPMAX dB 1 dB Compression Output Power PO (1 dB) f = 950 MHz, GPMAX f = 1440 MHz, GPMAX +1.0 +0.5 +3.5 dBm Note Gain Control Range (GCR) specification: GCR = GPMAX – GPMIN (dB) ConditionsµPC8119T: GPMAX @ VAGC = 0 V, GPMIN @ VAGC = VCC µPC8120T: GPMAX @ VAGC = VCC , GPMIN @ VAGC = 0 V Remark Measured on TEST CIRCUIT 1 and 2 STANDARD CHARACTERISTICS FOR REFERENCE (Unless otherwise specified, TA = +25°C, VCC = Vout = 3.0 V, ZS = ZL = 50 ΩΩΩΩ , External matched output port) Reference Value Parameter Symbol Test Conditions µPC8119T µPC8120T Unit Maximum Power Gain G PMAX f = 1900 MHz, Pin = –30 dBm 12.5 13 dB Gain Control Range Note GCR f = 1900 MHz, P in = –30 dBm 22 22 dB Noise Figure NF f = 1900 MHz, G PMAX 7.2 7.3 dB 1 dB Compression Output Power PO (1 dB) f = 1900 MHz, GPMAX +3.0 +2.5 dBm Note Gain Control Range (GCR) specification: GCR = GPMAX – GPMIN (dB) ConditionsµPC8119T: GPMAX @ VAGC = 0 V, GPMIN @ VAGC = VCC µPC8120T: GPMAX @ VAGC = VCC , GPMIN @ VAGC = 0 V Remark Measured on APPLICATION CIRCUIT EXAMPLE
µµµµPC8119T, µµµµPC8120T TEST CIRCUIT1 (f = 950 MHz, both products in common) VAGC IN 1000 pF 1 pF 1000 pF 1000 pF 1000 pF VCC 1000 pF 1000 pF C5C3 OUT L 5 nH Jumper wire Output matching circuit Vcc line low pass filter 2, 3 ILLUSTRATION OF TEST CIRCUIT1 ASSEMBLED ON EVALUATION BOARD PC8119/20T TYPE1 OUT IN VAGC Jumper wire C6C5C4C3 IN VCC L OUT VAGC µ COMPONENT LIST Form Symbol Value C1, C3 to C7 1000 pFChip capacitor C2 1 pF Note 1 Chip inductor L 5 nH (10 nH × 2 pcs parallel) Note 2 Jumper wire Jumper wire 5 nH Notes 1. 1 pF : Murata Mfg. Co., Ltd. GR40CK010C 2. 10 nH : Murata Mfg. Co., Ltd. LQP31A10NG04
µµµµPC8119T, µµµµPC8120T TEST CIRCUIT2 (f = 1440 MHz, both products in common) VAGC IN 1000 pF 1 pF 1000 pF 1000 pF 1000 pF VCC 1000 pF 1000 pFC4 C5C3 OUT L 2 nH Pattern L Output matching circuit Vcc line low pass filter 2, 3 ILLUSTRATION OF TEST CIRCUIT2 ASSEMBLED ON EVALUATION BOARD PC8119/20T TYPE2 VAGC Vcc OUT IN VAGC GND VCC OUT (Monitor of Vcc pin) Pattern L (5 nH) IN L µ COMPONENT LIST Form Symbol Value C1, C3 to C7 1000 pFChip capacitor C2 1 pF Note 1 Chip inductor L 2 nH (4.7 nH + 6.8 nH × 2 pcs parallel) Note 2 Printed on board Pattern L 5 nH Notes 1. 1 pF : Murata Mfg. Co., Ltd. GR40CK010C 6.8 nH : Murata Mfg. Co., Ltd. LQP31A6N8J04
µµµµPC8119T, µµµµPC8120T APPLICATION CIRCUIT EXAMPLE (f = 1900 MHz, both products in common) VAGC IN 1000 pF 1000 pF 1000 pF 1000 pF 1000 pF VCC 1000 pF 1000 pF C5C3 OUT L 100 nH Jumper wire Output matching circuit Vcc line low pass filter 2, 3 2 to 2.5 pF ILLUSTRATION OF APPLICATION CIRCUIT EXAMPLE ASSEMBLED ON EVALUATION BOARD PC8119/20T TYPE1 OUT IN VAGC C6C5C4 IN VCC L OUT VAGC GND µ Jumper wire COMPONENT LIST Form Symbol Value C1 to C7 1000 pFChip capacitor C8 2 to 2.5 pF Chip inductor L 100 nH Note Printed on board Jumper wire 5 nH Note 100 nH: Murata Mfg. Co., Ltd. LQP31A10NG04
µµµµPC8119T, µµµµPC8120T LLUSTRATION AND EXPLANATIONS OF EVALUATION BOARD PC8119/20T TYPE2 VAGC Vcc OUT IN OUT Vcc monitor lineIN VAGC VCC µ EXPLANATION <1> This board prints the pattern inductor which inductance is as same as jumper wire in TEST CIRCUITs (inductance: approx. 5 nH to 6 nH). <2> Input leakage to VCC pin can be monitored through ‘VCC monitor line’. This leakage can be suppressed with π type low pass filter attached to VCC pin. The filter performance depends on parallel capacitors. <3> After adjusted low pass filter, monitor line should be removed before output matching circuit is attached. EVALUATION BOARD CHARACTERS (1) 35 µm thick double-sided copper clad 35 × 42 × 0.4 mm polyimide board (2) Back side: GND pattern (3) Solder plated patterns (4) : Through holes ATTENTION Test circuit or print pattern in this sheet is for testing IC characteristics. In the case of actual system application, external circuits including print pattern and matching circuit constant of output port should be designed in accordance with IC’s S parameters and environmental components.
µµµµPC8119T, µµµµPC8120T APPLICATION for µµµµPC8119T, µµµµPC8120T 1. TO GET MINIMUM GAIN –1. V CC line filtering A low pass filter must be attached to VCC line in order to suppress RF input leakage to VCC . (The low pass filter: for example π type.) This filter must be inserted between VCC pin and matching inductor. If the low pass filter is not attached to this point, minimum output level would not go down under the leakage level. For example, µPC8119T’s RF input leakage level to VCC shows –30 dBm at 950 MHz and –17 dBm at 1440 dBm. π type low pass filter constant example Pattern L = 5 to 6 nH, C5 = C6 = 1000 pF (Refer to TEST CIRCUIT1, 2 and APPLICATION CIRCUIT EXAMPLE) In the case of testing on ‘ µPC8119/20T TYPE2’ board, monitor the input leakage to VCC pin through ‘VCC monitor line’ and adjust parallel capacitors to suppress leakage. –2. Capacitor feed-back between VAGC and VCC pins Feed-back capacitor between VAGC and V CC pins must be externally attached in order to decrease impedance difference. 2. TO GET MAXIMUM GAIN –1. Output matching As for external matching circuit, only output port should be equipped in order to get maximum gain. Output port matching in accordance with impedance of these ICs and next stage must keep the points as follows; <1> AC points
- IC output impedance at maximum gain must be used.
- Inductance of L must be chosen to get S 22 ~ –20 dBm at maximum gain. <2> DC point
- On LC matching, L of low DC resistance must be chosen to apply voltage as same as VCC to output pin. 3. OTHERS –1. Input connection Input port does not need to match externally. These ICs can be connected to front stage through coupling capacitor (eg 1000 pF) for DC cut. –2. V CC ON/OFF while voltage applied to VAGC Due to internal transistor’s voltage rating, ON/OFF can be controlled with VCC voltage while 3.0 V or less is applied to VAGC . For the usage and application of µPC8119T and µPC8120T, please refer to the application note (Document No. P12763E).
µµµµPC8119T, µµµµPC8120T TYPICAL CHARACTERISTICS (T A = +25°C) CIRCUIT CURRENT vs. SUPPLY VOLTAGE CIRCUIT CURRENT vs. OPERATING AMBIENT TEMPERATURE CURRENT INTO OUTPUT PIN AND CURRENT INTO V CC PIN vs. GAIN CONTROL VOLTAGE GAIN CONTROL CURRENT vs. GAIN CONTROL VOLTAGE Supply Voltage VCC (V) Circuit Current ICC (mA) Current into VCC pin IVCC (mA) Current into Output pin Iout (mA) Circuit Current ICC (mA) Gain Control Current IAGC ( A) 150 125 100 01234 Operating Ambient Temperature TA (°C) –50 –25 0 +25 +50 +5 +100 Gain Control Voltage VAGC (V) µ 0 0.5 1 1.5 2 2.5 3 3.5 Gain Control Voltage VAGC (V) 0 0.5 1 1.5 2 2.5 3 3.5 no signals Vcc = Vout no signals Vcc = Vout no signals Vcc = Vout Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.0 V Vcc = 3.3 V Vcc = 3.3 V Vcc = 2.7 V Vcc = 3.3 V Vcc = 3.3 V Vcc = 3.0 V Vcc = 2.7 V Vcc = 3.0 V Vcc = 2.7 V START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz 3 1 S11 vs. FREQUENCY Vcc = Vout = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY Vcc = Vout = 3.0 V, VAGC = 0 V (GPMAX) : 900 MHz 52.545 Ω – 39.801 Ω : 1500 MHz 33.402 Ω – 32.457 Ω : 1900 MHz 27.989 Ω – 24.408 Ω : 900 MHz 36.039 Ω – 190.09 Ω : 1500 MHz 39.668 Ω – 125.84 Ω : 1900 MHz 34.668 Ω – 106.88 Ω no signals Vcc = Vout IVCC Iout µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz S11 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm –10 –20 –30 –40 –10 –20 –30 –40 –10 –20 –30 –40 –10 –20 –30 –40 Vcc = 3.3 V Vcc = 2.7 V Vcc = 3.0 V 950.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –6.1221 dB S11 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –5.8713 dB S22 log MAG 5 dB/ REF 0 dB 1: –15.858 dB 950.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –15.889 dB Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.3 V 950.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz TA = +85 °C TA = +25 °C TA = –40 °C MARKER 1
950 MHz
1; 39.367 Ω –52.375 3.1987 pF 950.000 000 MHz S11 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz MARKER 1 1; 59.756 Ω –11.957 14.011 pF 950.000 000 MHz S22 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz Vcc = Vout = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm 950.000 000 MHzTA = +85 °C TA = +25 °C TA = –40 °C µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz S12 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm Vcc = 3.3 V Vcc = 2.7 V Vcc = 3.0 V 950.000 000 MHz S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –31.911 dB S12 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S21 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S21 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –32.053 dB0 –10 –20 –30 –40 –50 –10 –20 –30 –40 –50 950.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/ REF 6 dB 1: 12.854 dB16 950.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/ REF 6 dB 1: 12.738 dB TA = –85 °C TA = +85 °C TA = –25 °C TA = +25 °C TA = –40 °C TA = –40 °C Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.3 V 1 1 µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm –10 –20 –30 VAGC = 2.0 V VAGC = 2.1 V VAGC = 1.2 V VAGC = 1.4 V VAGC = 1.6 V VAGC = 0 V VAGC = 0.9 V VAGC = 1.0 V VAGC = 1.7 V VAGC = 1.8 V VAGC = 1.9 V 950.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1:12.926 dB S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm 950.000 000 MHz S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –32.063 dB0 –10 –20 –30 –40 –50 –10 –20 –30 950.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –15.219 dB 950.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –5.7199 dB –30 –20 –10 TA = +75 °C POWER GAIN vs. GAIN CONTROL VOLTAGE Power Gain GP (dB) Gain Control Voltage VAGC (V) 0 0.5 1 1.5 2 2.5 3 3.5 POWER GAIN vs. GAIN CONTROL VOLTAGE Power Gain GP (dB) –10 –20 –30 –40 –50 –60 –10 –20 –30 –40 –50 –60 Gain Control Voltage VAGC (V) 0 0.5 1 1.5 2 2.5 3 3.5 Vcc = 3.3 V Vcc = 3.0 V Vcc = 2.7 V TA = +25 °C TA = –25 °C VAGC = 1.4 V VAGC = 1.2 V VAGC = 1.0 V VAGC = 3.0 to 2.0 V VAGC = 0 to 0.7 V VAGC = 1.8 V VAGC = 1.6 V VAGC = 3.0 to 2.4 V VAGC = 0 to 0.7 V VAGC = 1.4 V TA = +75 °C TA = +25 °C TA = –25 °C
1 VAGC = 0 V
VAGC = 3.0 V µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Output Power Pout (dBm) +10 –10 –15 –20 +10 –10 –20 –30 –40 –50 –60 Output Power Pout (dBm) Input Power Pin (dBm) f = 950 MHz VAGC = 0 V f = 950 MHz VCC = 3.0 V OUTPUT POWER vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 Output Power Pout (dBm) Input Power Pin (dBm) f = 950 MHz VCC = 2.7 V OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Input Power Pin (dBm) f = 950 MHz VCC = 3.3 V Vcc = 3.3 V Vcc = 3.0 V Vcc = 2.7 V VAGC = 0 V VAGC = 0 VVAGC = 0 V VAGC = 1.6 V VAGC = 2.2 V VAGC = 3.3 V VAGC = 1.9 V VAGC = 2.05 V VAGC = 1.55 V VAGC = 1.8 V VAGC = 2.1 V VAGC = 1.95 V VAGC = 2.15 V VAGC = 2.00 V VAGC = 1.85 V VAGC = 1.60 V µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Vcc = 3.0 V VAGC = 0 V (GPMAX) f1 = 950 MHz f2 = 951 MHz Vcc = 3.0 V VAGC = 1.6 V (GP dB) f1 = 950 MHz f2 = 951 MHz IM3 Pout IM3 Pout Pout Pout 2f2 – f1 (952 MHz) 2f1 – f2 (949 MHz) ~ ~ 2f2 – f1 (952 MHz) 2f1 – f2 (949 MHz) Vcc = 3.0 V VAGC = 1.85 V (GP 10 dB) f1 = 950 MHz f2 = 951 MHz Vcc = 3.0 V VAGC = 2.15 V (GP –30 dB) f1 = 950 MHz f2 = 951 MHz Vcc = 3.0 V VAGC = 2.0 V (GP –20 dB) f1 = 950 MHz f2 = 951 MHz IM3 IM3 2f2 – f1 (952 MHz) 2f2 – f1 (952 MHz)2f1 - f2 (949 MHz) Pout IM32f2 – f1 (952 MHz) 2f1 – f2 (949 MHz) 2f1 – f2 (949 MHz) Vcc = 3.0 V VAGC = 2.3 V (GP –40 dB) f1 = 950 MHz f2 = 951 MHz Pout IM3 2f2 – f1 (952 MHz) 2f1 – f2 (949 MHz) µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWER Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE Input Power Pin (dBm) Adjacent Channel Interference Padj (dBc) –20 –30 –40 –50 –60 –80 –70 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) –45 –50 –55 –60 –65 –75 –70 0 0.5 1 1.5 2 2.5 3 f = 950 MHz VAGC = 0 V (GPMAX) Vcc = 3.3 V VAGC = 0 V (GPMAX) f1 = 950 MHz f2 = 951 MHz Vcc = 2.7 V VAGC = 0 V (GPMAX) f1 = 950 MHz f2 = 951 MHz PoutPout IM3 IM3 2f2 – f1 (952 MHz)2f2 – f1 (952 MHz) 2f1 – f2 (949 MHz)2f1 – f2 (949 MHz) Vcc = 3.3 V –100kHz Vcc = 3.0 V –100kHz Vcc = 2.7 V –100kHz Vcc = 3.3 V –50kHz Vcc = 3.0 V –50kHz Vcc = 2.7 V –50kHz Pin = –17.4 dBm –50 kHz Pin = –17.4 dBm –100 kHz Pin = –19.4 dBm –100 kHz Pin = –19.4 dBm –50 kHz f = 950 MHz Vcc = 3.0 V Δ Δ Δ Δ Δ Δ Δ Δ Δ Δ µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz S11 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm –10 –20 –30 –10 –20 –30 –10 –20 –30 –10 –20 –30 Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.3 V 1 440.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –6.1588 dB S11 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX) , Pin = –30 dBm S22 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm 1 440.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –6.2593 dB 1 440.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –16.978 dBS22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –17.51 dB MARKER 1
1.44 GHz
TA = +85 °C TA = +85 °C TA = +25 °C TA = +25 °C TA = –40 °C TA = –40 °C 1 440.000 000 MHz Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.3 V MARKER 1
1.44 MHz
1; 36.172 Ω –45.977 Ω 2.4039 pF 1 440.000 000 MHz S11 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz MARKER 1 1; 48.932 Ω –13.582 Ω 8.1375 pF 1 440.000 000 MHz S22 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz S21 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.3 V 1 440.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/ REF 6 dB 1:13.355 dB S21 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S12 vs. FREQUENCY Vcc = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm S12 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm 1 440.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/ REF 6 dB 1: –13.23 dB S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –36.039 dBS12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –35.55 dB0 –30 –40 –50 –20 –10 –30 –40 –50 –20 –10 MARKER 1 TA = +85 °C TA = +85 °C TA = +25 °C TA = +25 °C TA = –40 °C TA = –40 °C 1 440.000 000 MHz 1 440.000 000 MHz Vcc = 2.7 V Vcc = 3.0 V Vcc = 3.3 V 1 1 µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz POWER GAIN vs. GAIN CONTROL VOLTAGE +20 –10 –20 –30 –40 –50 –60 +10 +20 –10 –20 –30 –40 –50 –60 +10 S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –35.661 dBS21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: 13.362 dB –30 –20 –10 –30 –40 –50 –20 –10 1 440.000 000 MHz 1 440.000 000 MHz S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm 1 440.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –6.1536 dB –30 –20 –10 –30 –20 –10 S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm 1 440.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –17.471 dB 0 0.5 1 1.5 2 2.5 3 3.5 Gain Control Voltage VAGC (V) Power Gain GP (dB) POWER GAIN vs. GAIN CONTROL VOLTAGE 0 0.5 1 1.5 2 2.5 3 3.5 Gain Control Voltage VAGC (V) Power Gain GP (dB) Vcc = 3.3 V Vcc = 3.0 V Vcc = 2.7 V VAGC = 1.2 V VAGC = 1.4 V VAGC = 1.6 V VAGC = 0 to 0.6 V VAGC = 0.9 V VAGC = 1.0 V VAGC = 1.8 V VAGC = 1.9 V VAGC = 2.0 V VAGC = 2.1 V VAGC = 0 V VAGC = 3.0 V VAGC = 2.2 V VAGC = 3.0 to 2.0 V VAGC = 1.8 V VAGC = 1.6 V VAGC = 1.4 V VAGC = 1.4 V VAGC = 0 to 0.7 V VAGC = 1.8 V VAGC = 1.2 V VAGC = 1.0 V VAGC = 0 to 0.7 V TA = +75 °C TA = +5 °C TA = +25 °C TA = +25 °C TA = –25 °C TA = –25 °C µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER +10 –10 –15 –20 Output Power Pout (dBm) Output Power Pout (dBm) +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) f = 1440 MHz Vcc = 3.3 V f = 1440 MHz Vcc = 2.7 V f = 1440 MHz Vcc = 3.0 V VAGC = 0 V VAGC = 0 V VAGC = 1.6 V VAGC = 1.6 V VAGC = 1.8 V VAGC = 1.95 V VAGC = 2.1 V VAGC = 2.7 V VAGC = 2.2 V VAGC = 1.9 V VAGC = 0 V VAGC = 1.7 V VAGC = 2.05 V VAGC = 3.3 V VAGC = 1.85 V VAGC = 3.0 V Vcc = 3.0 V Vcc = 3.3 V Vcc = 2.7 V f = 1440 MHz VAGC = 0 V VAGC = 2.75 V VAGC = 2.0 V µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Input Power Pin (dBm) Pout IM3 VCC = 3.0 V VAGC = 0 V (GPMAX) f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.65 V (GP ~ 0 dB) f1 = 1440 MHz f2 = 1441 MHz 2f2 – f1 (1442 MHz) 2f1 – f2 (1439 MHz) IM3 2f2 – f1 (1442 MHz) 2f1 – f2 (1439 MHz) Pout OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWER Input Power Pin (dBm) Input Power P in (dBm) IM3 2f2 – f1 (1442 MHz) 2f1 – f2 (1439 MHz) IM3 2f2 – f1 (1442 MHz) 2f1 – f2(1439 MHz) Pout VCC = 3.0 V VAGC = 1.85 V (GP ~ –10 dB) f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 2.0 V (GP ~ –20 dB) f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 2.0 V (GP ~ –30 dB) f1 = 1440 MHz f2 = 1441 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER Input Power Pin (dBm) Pout IM3 2f2 – f1 (1442 MHz) 2f1 – f2 (1439 MHz) Pout –10 –20 –30 –40 –50 –60 –70 –10 –20 –30 –40 –50 –60 –70 –10 –20 –30 –40 –50 –60 –70 –10 –20 –30 –40 –50 –60 –70 –10 –20 –30 –40 –50 –60 –70 µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Input Power Pin (dBm) Pout IM3 2f2 – f1 2f1 – f2 (1439 MHz) VCC = 3.3 V VAGC = 0 V (GPMAX) f1 = 1440 MHz f2 = 1441 MHz (1442 MHz) OUTPUT POWER AND IM 3 vs. INPUT POWER –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) Pout IM3 2f2 – f1 2f1 – f2 (1439 MHz) VCC = 2.7 V VAGC = 0 V (GPMAX) f1 = 1440 MHz f2 = 1441 MHz (1442 MHz) ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER Adjacent Channel Interference Padj (dBc) Adjacent Channel Interference Padj (dBc) –45 –50 –55 –60 –65 –70 –75 0 0.5 1 1.5 2 2.5 3 Gain Control Voltage V AGC (V) f = 1440 MHz VCC = 3.0 V Pin = –19.4 dBm –50 kHz Pin = –17.4 dBm –50 kHz Pin = –17.4 dBm –100 kHz Pin = –19.4 dBm –100 kHz –20 –30 –40 –50 –60 –70 –80 f = 1440 MHz VAGC = 0 V (GPMAX) VCC = 2.7 V –50 kHz VCC = 3.0 V –50 kHz VCC = 3.3 V –50 kHz VCC = 2.7 V –100 kHz VCC = 3.3 V –100 kHz VCC = 3.0 V –100 kHz Δ Δ Δ Δ Δ Δ Δ Δ Δ Δ µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz 1; 25.644 Ω ––28.377 Ω 2.9519 pF 1 900.000 000 MHz S11 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz 1; 43.631 Ω 8.0605 Ω 675.2 pH 1 900.000 000 MHz S22 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz MARKER 1
1.9 GHz
S11 log MAG 5 dB/ REF 0 dB 1: 6.8063 dB –10 –20 –30 START 100.000 000 MHz STOP 1 900.000 000 MHz 1 900.000 000 MHz 1 900.000 000 MHz 1 900.000 000 MHz 3 100.000 000 MHz S11 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm S21 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm S12 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = –30 dBm S22 log MAG 5 dB/ REF 0 dB 1: –20.108 dB –10 –20 –30 START 100.000 000 MHz STOP 3 100.000 000 MHz S21 log MAG 1 dB/ REF 7 dB 1: 12.887 dB START 100.000 000 MHz STOP 3 100.000 000 MHz S12 log MAG 5 dB/ REF 0 dB 1: –37.473 dB0 –10 –20 –30 –40 –50 START 100.000 000 MHz STOP 3 100.000 000 MHz VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 3.3 V VCC = 3.0 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V Vcc = Vout = 3.0 V, VAGC = 0 V (GPMAX), Pin = –30 dBm µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz –10 –20 –10 –20 –30 –10 –20 –30 –10 –20 –30 0 0.5 1 1.5 2 2.5 3 3.5 Power Gain GP (dB) Gain Control Voltage VAGC (V) POWER GAIN vs. GAIN CONTROL VOLTAGE VCC = 3.0 V VCC = 3.3 V VCC = 2.7 V –10 –20 0 0.5 1 1.5 2 2.5 3 3.5 Power Gain GP (dB) Gain Control Voltage VAGC (V) POWER GAIN vs. GAIN CONTROL VOLTAGE TA = –25 °C TA = –25 °C TA = +75 °C TA = +75 °C TA = +25 °C TA = +25 °C VAGC = 0 V VAGC = 1.0 V VAGC = 1.7 V VAGC = 2.0 V VAGC = 3.0 V VAGC = 1.4 V S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S21 log MAG REF –10.0 dB 5.0 dB/13.038 dB MARKER 1 START 0.100000000 GHz STOP 3.100000000 GHz VAGC = 0 V VAGC = 3.0 V VAGC = 1.6 V VAGC = 1.4 V VAGC = 0 V VAGC = 3.0 V VAGC = 1.8 V VAGC = 1.4 V S11 log MAG REF –10.0 dB 5.0 dB/–6.025 dB MARKER 1 START 0.100000000 GHz STOP 3.100000000 GHz S22 log MAG REF –10.0 dB 5.0 dB/–18.194 dB MARKER 1 START 0.100000000 GHz STOP 3.100000000 GHz –10 –20 –30 –40 –50 VAGC = 3.0 V VAGC = 0 V S12 log MAG REF –25.0 dB 5.0 dB/–38.732 dB MARKER 1 START 0.100000000 GHz STOP 3.100000000 GHz µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER +10 –10 –15 –20 Output Power Pout (dBm) Output Power Pout (dBm) +10 –10 –20 –30 –40 Output Power Pout (dBm) +10 –10 –20 –30 –40 Input Power P in (dBm) Input Power Pin (dBm) Input Power Pin (dBm) VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V f = 1900 MHz VAGC = 0 V f = 1900 MHz V CC = 3.0 V VAGC = 0 V VAGC = 1.4 V VAGC = 1.65 V VAGC = 1.8 V VAGC = 2.0 V VAGC = 3.0 V OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) +10 –10 –20 –30 –40 Input Power P in (dBm) f = 1900 MHz VCC = 2.7 V VAGC = 0 V VAGC = 1.4 V VAGC = 1.6 V VAGC = 1.75 V VAGC = 1.9 V VAGC = 2.7 V VAGC = 0 V VAGC = 1.4 V VAGC = 1.7 V VAGC = 1.85 V VAGC = 2.0 V VAGC = 3.3 V f = 1900 MHz V CC = 3.3 V µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Input Power Pin (dBm) Pout IM3 IM3 2f1 – f2 (1899.7 MHz) 2f1 – f2 (1899.7 MHz) 2f2 – f1 (1900.6 MHz) 2f2 – f1 (1900.6 MHz) Pout VCC = 3.0 V VAGC = 0 V (GPMAX) f1 = 1900.0 MHz f2 = 1900.3 MHz VCC = 3.0 V VAGC = 1.8 V (GP –5 dB) f1 = 1900 MHz f2 = 1900.3 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) IM3 2f1 – f2 (1899.7 MHz) 2f2 – f1 (1900.6 MHz) Pout OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) IM3 2f1 – f2 (1899.7 MHz) 2f2 – f1 (1900.6 MHz) Pout VCC = 3.0 V VAGC = 1.7 V (GP –10 dB) f1 = 1900 MHz f2 = 1900.3 MHz VCC = 3.0 V VAGC = 3.0 V (GPMIN) f1 = 1900 MHz f2 = 1900.3 MHz µµµµPC8119T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER Input Power Pin (dBm) Pout IM3 2f2 – f1 (1900.6 MHz) 2f1 – f2 (1899.7 MHz) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) VCC = 3.3 V VAGC = 0 V (GPMAX) f1 = 1900.0 MHz f2 = 1900.3 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER Input Power Pin (dBm) Pout IM3 2f2 – f1 (1900.6 MHz) 2f1 – f2 (1899.7 MHz) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) VCC = 2.7 V VAGC = 0 V (GPMAX) f1 = 1900.0 MHz f2 = 1900.3 MHz ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER Input Power Pin (dBm) Adjacent Channel Interference Padj (dBc) Adjacent Channel Interference Padj (dBc) ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE Gain Control Voltage VAGC (V) f = 1900 MHz VAGC = 0 V (GPMAX) VCC = 2.7 V –600 kHz VCC = 3.0 V –600 kHz VCC = 3.3 V –600 kHz Pin = –12 dBm, –600 kHz Pin = –15 dBm, 600 kHz Pin = –10 dBm, 600 kHz f = 1900 MHz VCC = 3.0 V +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 –20 –30 –40 –50 –60 –80 –70 –45 –50 –55 –60 –65 –75 –70 Δ Δ Δ Δ Δ Δ µµµµPC8119T
µµµµPC8119T, µµµµPC8120T S11 vs. FREQUENCY VCC = 3.0 V, VAGC = 3.0 V (GPMAX), Pin = –30 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY VCC = 3.0 V, VAGC = 3.0 V (GPMAX), Pin = –30 dBm 01234 0 0 . 5 1 1 . 5 2 2 . 5 3 3 . 5 CIRCUIT CURRENT vs. SUPPLY VOLTAGE GAIN CONTROL CURRENT vs. GAIN CONTROL VOLTAGE CIRCUIT CURRENT vs. OPERATING AMBIENT TEMPERATURE CURRENT INTO OUTPUT PIN AND CURRENT INTO V CC PIN vs. GAIN CONTROL VOLTAGE Circuit Current ICC (mA) Supply Voltage VCC (V) –40 –20 0 +20 +40 +60 +80 +100 Circuit Current ICC (mA) Operating Ambient temperature TA (°C) 0 0.5 1 1.5 2 2.5 3 3.5 Current into Output Pin Iout (mA) Current into VCC Pin IVCC (mA) Gain Control Voltage VAGC (V) Gain Control Voltage VAGC (V) no signals no signals no signals 200 175 150 125 100 Gain Control Current IAGC ( A) VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V VCC = 3.3 V no signals Iout IVCC VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V : 950 MHz 49.6 Ω – 43.49 Ω : 1440 MHz 32.908 Ω – 34.803 Ω : 1900 MHz 26.389 Ω – 24.797 Ω : 950 MHz 33.758 Ω – 173.11 Ω : 1440 MHz 35.742 Ω – 123.63 Ω : 1900 MHz 34.758 Ω – 105.66 Ω µ VCC = 3.0 V VCC = 2.7 V µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz VCC = 3.0 V, VAGC = 3.0 V (GPMAX), Pin = –30 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz 1; 42.344 Ω –55.41 Ω 3.0235 pF
950.000.000 MHz
S11 vs. FREQUENCY 1; 50.91 Ω –5.9805 Ω 28.013 pF 950.000 000 MHz S22 vs. FREQUENCY S11 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5dB/ REF 0 dB 1: –5.6328 dB –10 –20 –30 –10 –20 –30 –10 –20 –30 –10 –20 –30 S11 vs. FREQUENCY VCC = 3.0 V VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5dB/ REF 0 dB 1: –5.7196 dB S22 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5dB/ REF 0 dB 1: –19 .447 dB S22 vs. FREQUENCY VCC = 3.0 V, VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5dB/ REF 0 dB 1: –18.205 dB VCC = 2.7 V VCC = 2.7 V VCC = 3.0 V VCC = 3.0 V VCC = 3.3 V TA = +85 °C TA = –25 °C TA = –40 °C TA = +25 °C TA = –40 °C TA = +85 °C VCC = 3.3 V µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz S21 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/ REF 7 dB 1:12.768 dB17 S12 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5dB/ REF 0 dB 1: –31.551 dB0 –10 –20 –30 –40 –50 S12 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5dB/ REF 0 dB 1: –31.543 dB0 –10 –20 –30 –40 –50 S21 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 950.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 1dB/ REF 7 dB 1: –12.78 dB 1 1 VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V
1 TA = –40 °C
TA = +25 °C TA = +85 °C TA = –40 °C TA = +25 °C TA = +85 °C µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz +20 +10 –10 –20 –30 –40 –500 0.5 1 1.5 VCC = 3.0 V VCC = 2.7 V 2 2.5 3.0 3.5 +20 +10 –10 –20 –30 –40 TA = –25 °C TA = +75 °C TA = +25 °C TA = –25 °C TA = +75 °CVCC = 3.3 V Power Gain GP (dB) Gain Control Voltage VAGC (V) Gain Control Voltage V AGC (V) POWER GAIN vs. GAIN CONTROL VOLTAGE POWER GAIN vs. GAIN CONTROL VOLTAGE S21 log MAG 5 dB/ REF 0 dB 1: 12.776 dB 950.000.000 MHz 950.000.000 MHz –10 –20 –30 VAGC = 1.7 V VAGC = 3.0 V VAGC = 3.0 V VAGC = 0 V VAGC = 1.1 V VAGC = 0 to 1.2 V VAGC = 2.2 to 3.0 V VAGC = 1.4 V VAGC = 1.6 V VAGC = 1.6 V VAGC = 0 to 0.9 V VAGC = 1.2 V VAGC = 2.3 to 3.0 V VAGC = 1.8 V VAGC = 1.0 V VAGC = 0.9 V VAGC = 2.0 V VAGC = 1.9 V VAGC = 1.8 VVAGC = 1.6 V VAGC = 1.5 V VAGC = 1.4 V VAGC = 1.3 V VAGC = 1.2 V START 100.000 000 MHz STOP 3 100.000 000 MHz S11 log MAG 5 dB/ REF 0 dB 1: –5.6855 dB –10 –20 –30 –10 –20 –30 START 100.000 000 MHz STOP 3 100.000 000 MHz S22 log MAG 5 dB/ REF 0 dB 1: –19.041 dB START 100.000 000 MHz STOP 3 100.000 000 MHz S12 log MAG 5 dB/ REF 0 dB 1: –31.081 dB0 –10 –20 –30 –40 –50 START 100.000 000 MHz STOP 3 100.000 000 MHz Power Gain GP (dB) S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz +10 –10 –15 –20 f = 950 MHz VAGC = 3.0 V VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) f = 950 MHz VCC = 3.0 V VAGC = 3.0 V VAGC = 1.5 V VAGC = 1.3 V VAGC = 1.15 V VAGC = 1.0 V VAGC = 0 V +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) f = 950 MHz VCC = 2.7 V VAGC = 2.7 V VAGC = 1.3 V VAGC = 1.1 V VAGC = 0.95 V VAGC = 0 V VAGC = 0.8 V +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) f = 950 MHz VCC = 3.3 V VAGC = 3.3 V VAGC = 1.5 V VAGC = 1.35 V VAGC = 1.2 V VAGC = 0 V VAGC = 1.7 V µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz +10 –10 –20 –30 –40 –50 –60 –70 –30 –25 –20 –15 Input Power P in (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) –10 –5 0 Pout IM3 2f2 – f1 (952 MHz) 2f1 – f2 (949 MHz) VCC = 3.0 V VAGC = 3.0 V (GPMAX) f1 = 950 MHz f2 = 951 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 Input Power P in (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) –10 –5 0 Pout IM3 2f1 – f2 (949 MHz) 2f2 – f1 (952 MHz) VCC = 3.0 V VAGC = 1.5 V (GP 0 dB) f1 = 950 MHz f2 = 951 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 –30 –25 –20 –15 Input Power P in (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) –10 –5 0 Pout IM3 2f1 – f2 (949 MHz) 2f2 – f1 (952 MHz) VCC = 3.0 V VAGC = 1.3 V (GP –10 dB) f1 = 950 MHz f2 = 951 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 Input Power P in (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) –10 –5 0 Pout IM3 2f1 – f2 (949 MHz) 2f2 – f1 (952 MHz) VCC = 3.0 V VAGC = 1.15 V (GP –20 dB) f1 = 950 MHz f2 = 951 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 –30 –25 –20 –15 Input Power P in (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) –10 –5 0 Pout IM3 2f1 – f2 (949 MHz) 2f2 – f1 (952 MHz) VCC = 3.0 V VAGC = 1.0 V (GP –30 dB) f1 = 950 MHz f2 = 951 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 Input Power P in (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) –10 –5 0 Pout IM32f1 – f2 (949 MHz) 2f2 – f1 (952 MHz) VCC = 3.0 V VAGC = 1.15 V (GP –38 dB) f1 = 950 MHz f2 = 951 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER ~~ ~~ µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 950 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 Input Power P in (dBm) Input Power P in (dBm) Pout 2f1 – f2 (949 MHz) 2f1 – f2 (949 MHz) VCC = 3.3 V VAGC = 3.3 V (GPMAX) f1 = 950 MHz f2 = 951 MHz VCC = 2.7 V VAGC = 2.7 V (GPMAX) f1 = 950 MHz f2 = 951 MHz (952 MHz) (952 MHz) 2f2 – f1 2f2 – f1 Pout ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER –20 –30 –40 –50 –60 –70 –80 Adjacent Channel Interference Padj (dBc) Input Power Pin (dBm) VCC = 2.7 V –50 kHz VCC = 3.0 V –50 kHz VCC = 3.3 V –50 kHz VCC = 2.7 V –100 kHz VCC = 3.0 V –100 kHz VCC = 3.3 V –100 kHz f = 950 MHz VAGC = VCC (GPMAX) ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE Adjacent Channel Interference Padj (dBc) 0 0.5 1 1.5 2 2.5 3 Gain Control Voltage VAGC (V) f = 950 MHz VCC = 3.0 V Pin = –17.4 dBm –50 kHz Pin = –17.4 dBm –100 kHz Pin = –19.4 dBm –100 kHz –45 –50 –55 –60 –65 –70 –75 P in = –19.4 dBm –50 kHz Δ Δ Δ Δ Δ Δ Δ Δ ΔΔ µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz MARKER 1 1; 36.68 Ω –50.342 Ω 2.2582 pF 1 400.000 000 MHz S11 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz MARKER 1 1; 48.615 Ω –5.4863 Ω –20.145 pF 1 440.000 000 MHz S22 vs. FREQUENCY START 100.000 000 MHz STOP 3 100.000 000 MHz –10 –20 –30 –10 –20 –30 VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V –10 –20 –30 –10 –20 –30 1 440.000 000 MHz 1 440.000 000 MHz S11 S22 START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1; –6.064 dB REF 0 dB 1; –6.0673 dB S11 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm S11 vs. FREQUENCY VCC = 3.0 V, VAGC = 3.0 V (GpMAX), Pin = –30 dBm S22 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY VCC = 3.0 V, VAGC = 3.0 V (GpMAX), Pin = –30 dBm 1 440.000 000 MHz S11 log MAGlog MAG log MAGlog MAG 5 dB/ 5 dB/ REF 0 dB 1; –24.057 dB 1 440.000 000 MHz S22 5 dB/ REF 0 dB 1; –22.951 dB VCC = 3.3 VVCC = 3.0 V VCC = 2.7 V TA = +85 °C TA = +25 °C TA = –40 °C TA = +85 °C TA = +25 °C TA = –40 °C VCC = 3.0 V , VAGC = 3.0 V (GPMAX), Pin = –30 dBm µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz –10 –20 –30 –40 –50 –10 –20 –30 –40 –50 1 1 1 440.000 000 MHz S12 START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz REF 7 dB 1;13.025 dB S12 1 440.000 000 MHz log MAG log MAGlog MAG 1 dB/ 5 dB/ REF 0 dB 1; –35.378 dB 1 440.000 000 MHz 5 dB/ REF 0 dB 1; –35.238 dB VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V TA = +85 °C TA = +25 °C TA = –40 °C TA = +25 °C TA = +85 °C TA = –40 °C log MAG17 MARKER 1 START 100.000 000 MHz STOP 3 100.000 000 MHz REF 7 dB 1; 12.974 dB 1 440.000 000 MHz S21 S211 dB/ VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V MARKER 1 S12 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm S12 vs. FREQUENCY VAGC = 3.0 V, (GPMAX), Pin = –30 dBm S21 vs. FREQUENCY VAGC = 3.0 V, (GPMAX), Pin = –30 dBm S21 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz 1.440.000 000 MHz S21 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –12.908 dB –10 –20 –30 1.440.000 000 MHz S12 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –34.801 dB –10 –20 –30 –40 –50 1.440.000 000 MHz S11 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –6.1639 dB –10 –20 –30 –10 –20 –30 1.440.000 000 MHz S22 log MAG START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1: –23.731 dB POWER GAIN vs. GAIN CONTROL VOLTAGE Power Gain GP (dB) Gain Control Voltage VAGC (V) +20 +10 –10 –20 –30 –40 POWER GAIN vs. GAIN CONTROL VOLTAGE Power Gain GP (dB) Gain Control Voltage VAGC (V) +20 +10 –10 –20 –30 –40 VCC = 3.0 V TA = +75 °C TA = +25 °C TA = +25 °C TA = +75 °C TA = –25 °C TA = –25 °C VCC = 3.3 V VCC = 2.7 V S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm 1VAGC = 3.0 V VAGC = 2.0 V VAGC = 1.9 V VAGC = 1.8 V VAGC = 1.7 V VAGC = 1.6 V VAGC = 1.5 V VAGC = 1.4 V VAGC = 1.3 V VAGC = 1.2 V VAGC = 1.1 V VAGC = 0 to 1.2 V VAGC = 1.4 V VAGC = 1.6 V VAGC = 0 to 0.9 V VAGC = 2.3 to 3.0 V VAGC = 1.35 V VAGC = 1.6 V VAGC = 1.8 V VAGC = 2.2 to 3.0 V VAGC = 3.0 V VAGC = 0 V VAGC = 1.0 V VAGC = 0.9 V VAGC = 0 V MARKER 1 µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) f = 1440 MHz VCC = 3.0 V f = 1440 MHz VCC = 3.3 V f = 1440 MHz VCC = 2.7 V f = 1440 MHz VAGC = 3.0 V VCC = 3.3 V VAGC = 3.3 V VAGC = 1.65 V VAGC = 3.0 V VAGC = 1.5 V VAGC = 1.3 V VAGC = 1.15 V VAGC = 0.95 V VAGC = 0 V VCC = 3.0 V VCC = 2.7 V VAGC = 1.45 V VAGC = 2.7 V VAGC = 1.3 V VAGC = 1.1 V VAGC = 0 V +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER vs. INPUT POWER Input Power P in (dBm) Output Power Pout (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Input Power Pin (dBm) VAGC = 1.3 V VAGC = 1.1 V VAGC = 0.75 V VAGC = 0 V VAGC = 0.95 V +10 –10 –15 –20 Output Power Pout (dBm) µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) 2f1 – f2 (1439 MHz) Pout IM3 OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) 2f2 – f1 (1442 MHz) VCC = 3.0 V VAGC = 3.0 V (GPMAX) f1 = 1440 MHz f2 = 1441 MHz 2f1 – f2 (1439 MHz) Pout IM3 VCC = 3.0 V VAGC = 1.5 V (GP 0 dB) f1 = 1440 MHz f2 = 1441 MHz 2f2 – f1 (1442 MHz) OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) VCC = 3.0 V VAGC = 1.3 V (GP –10 dB) f1 = 1440 MHz f2 = 1441 MHz Pout IM3 IM3 OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) VCC = 3.0 V VAGC = 1.15 V (GP –20 dB) f1 = 1440 MHz f2 = 1441 MHz Pout IM3 OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) VCC = 3.0 V VAGC = 0 V (GP –30 dB) f1 = 1440 MHz f2 = 1441 MHz Pout 2f2 – f1 (1442 MHz) 2f1 – f2 (1439 MHz) 2f1 – f2 (1439 MHz) 2f2 – f1 (1442 MHz) 2f1 – f2 (1439 MHz) 2f2 – f1 (1442 MHz) µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1440 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE OUTPUT POWER AND IM 3 vs. INPUT POWER +10 –10 –20 –30 –40 –50 –60 –70 –20 –30 –40 –50 –60 –70 –80 –45 –50 –55 –60 –65 –70 –75 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm)Adjacent Channel Interference Padj (dBc) Adjacent Channel Interference Padj (dBc) +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Input Power Pin (dBm) Input Power Pin (dBm) 0 0.5 1 1.5 2 2.5 3 Gain Control Voltage VAGC (V) Pout IM3 2f2 – f1 2f1 – f2 (1439 MHz) 2f1 – f2 (1439 MHz) VCC = 3.3 V VAGC = 3.3 V (GPMAX) f1 = 1440 MHz f2 = 1441 MHz VCC = 2.7 V VAGC = 2.7 V (GPMAX) f1 = 1440 MHz f2 = 1441 MHz (1442 MHz) 2f2 – f1 (1442 MHz) Pout f = 1440 MHzVAGC = VCC (GPMAX) VCC = 2.7 V –50 kHz VCC = 3.0 V –50 kHz VCC = 3.3 V –50 kHz VCC = 2.7 V –100 kHz VCC = 3.0 V –100 kHz VCC = 3.3 V –100 kHz f = 1440 MHz VCC = 3.0 V Pin = –19.4 dBm –50 kHz Pin = –17.4 dBm –50 kHz Pin = –17.4 dBm –100 kHz Pin = –19.4 dBm –100 kHz Δ Δ Δ Δ Δ Δ Δ ΔΔ Δ µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz log MAG log MAG log MAG log MAG MARKER 1 1; 24.991 Ω –27.029 Ω 3.0991 pF 1 900.000 000 MHz S11 vs. FREQUENCY START 100.000 000 MHz STOP 100.000 000 MHz MARKER 1 1; 52.643 Ω 16.369 Ω 1.3712 nH 1 900.000 000 MHz S22 vs. FREQUENCY START 100.000 000 MHz STOP 100.000 000 MHz MARKER 1 VCC = 3.3 V VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V VCC = 2.7 V –10 –20 –30 –10 –20 –30 –10 –20 –30 –40 –50 MARKER 1 1 900.000 000 MHz 1 900.000 000 MHz S11 S22 START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/ REF 0 dB 1; –5.5512 dB REF 7 dB 1; 12.505 dB S11 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm S21 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm S22 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm S12 vs. FREQUENCY VAGC = 3.0 V (GPMAX), Pin = –30 dBm 1 900.000 000 MHz S21 1 dB/ 5 dB/ REF 0 dB 1; –24.124 dB 1 900.000 000 MHz S12 5 dB/ REF 0 dB 1; –37.895 dB VCC = 3.0 V VCC = 3.3 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V MARKER 1 VCC = 3.0 V VCC = 2.7 V Vcc = 3.0 V, VAGC = 3.0 V (GPMAX), Pin = –30 dBm µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz –10 –20 –30 –40 –50 –10 –20 –30 S21 log MAG 13.389 dB S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm START 0.100000000 GHz STOP 3.100000000 GHzSTART 0.100000000 GHz STOP 3.100000000 GHz –10 –20 –30 S22 log MAG –21.073 dB S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm 5.0 dB/ REF –10.0 dB START 0.100000000 GHz STOP 3.100000000 GHz MARKER 1 POWER GAIN vs. GAIN CONTROL VOLTAGE POWER GAIN vs. GAIN CONTROL VOLTAGE Power Gain GP (dB) –10 –20 Power Gain GP (dB) –10 VAGC = 0 V VAGC = 0 V VAGC = 0 V VAGC = 1.4 V VAGC = 1.6 V VAGC = 3.0 V VAGC = 1.25 V VAGC = 1.6 V VAGC = 3.0 V VAGC = 3.0 V VAGC = 1.7 V VAGC = 1.4 V VAGC = 1.0 V VAGC = 0 V VAGC = 2.0 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V TA = +25 °C TA = +75 °C TA = –25 °C MARKER 1 S11 log MAG –5.75 dB S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE V cc = 3.0 V, Pin = –30 dBm 5.0 dB/ REF –10.0 dB START 0.100000000 GHz STOP 3.100000000 GHz MARKER 1 VAGC = 3.0 V Gain Control Voltage VAGC (V) Gain Control Voltage V AGC (V) –10 –20 –30 µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz VAGC = 1.65 V VAGC = 1.55 V VAGC = 1.48 V VAGC = 0 V +10 –10 –15 –20 +10 –10 –15 –20 –25 –30 –35 –40 –45 Input Power P in (dBm) Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER Output Power Pout (dBm) Output Power Pout (dBm) +10 –10 –15 –20 –25 –30 –35 –40 –45 Output Power Pout (dBm) –5 0 +5 +10 Input Power Pin (dBm) +10 –10 –15 –20 –25 –30 –35 –40 –45 Output Power Pout (dBm) Input Power Pin (dBm) f = 1900 MHz VAGC = 3.0 V f = 1900 MHz V CC = 3.0 V f = 1900 MHz V CC = 3.3 V f = 1900 MHz V CC = 2.7 V VCC = 3.3 V VAGC = 3.0 V VCC = 3.0 V VCC = 2.7 V VAGC = 3.3 V VAGC = 1.9 V VAGC = 2.7 V VAGC = 1.3 V VAGC = 1.2 V VAGC = 1.13 V VAGC = 0 V VAGC = 1.65 V VAGC = 1.5 V VAGC = 1.4 V VAGC = 1.3 V VAGC = 0 V VAGC = 1.5 V µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz +10 –10 –20 –30 –40 –50 –60 –70 +10 –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWER OUTPUT POWER AND IM 3 vs. INPUT POWEROUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) +10 –10 –20 –30 –40 –50 –60 –70 Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Pout IM3 2f2 – f1 (1900.6 MHz) Pout IM3 IM3 IM3 2f2 – 2f1 (1900.6 MHz)VCC = 3.0 V VAGC = 3.0 V (GPMAX) f1 = 1900 MHz f2 = 1900.3 MHz Pout Pout 2f2 – f1 (1900.6 MHz) VCC = 3.0 V VAGC = 1.3 V (GP –10 dB) f1 = 1900 MHz f2 = 1900.3 MHz VCC = 3.0 V VAGC = 0 V (GPMIN) f1 = 1900 MHz f2 = 1900.3 MHz VCC = 3.0 V VAGC = 1.4 V (GP –5 dB) f1 = 1900 MHz f2 = 1900.3 MHz 2f1 – 2f2 (1899.7 MHz) 2f1 – f2 (1899.7 MHz) 2f2 – f1 (1900.6 MHz) 2f1 – f2 (1899.7 MHz) 2f1 – f2 (1899.7 MHz) +10 –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Pout IM3 VCC = 3.3 V VAGC = 3.3 V (GPMAX) f1 = 1900 MHz f2 = 1900.3 MHz 2f2 – f1 (1900.6 MHz) 2f1 – f2 (1899.7 MHz) +10 –10 –20 –30 –40 –50 –60 –70 OUTPUT POWER AND IM 3 vs. INPUT POWER Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) Pout IM3 VCC = 2.7 V VAGC = 2.7 V (GPMAX) f1 = 1900 MHz f2 = 1900.3 MHz 2f2 – f1 (1900.6 MHz) 2f1 – f2 (1899.7 MHz) µµµµPC8120T
µµµµPC8119T, µµµµPC8120T Output port matching at f = 1900 MHz –20 –30 –40 –50 –60 –70 –80 ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE Adjacent Channel Interference Padj (dBc) Input Power Pin (dBm) –45 –50 –55 –60 –65 –70 –75 Adjacent Channel Interference Padj (dBc) Gain Control Voltage VAGC (V) VCC = 2.7 V –600 kHz Pin = –10 dBm –600 kHz Pin = –12 dBm –600 kHz Pin = –15 dBm –600 kHz VCC = 3.0 V –600 kHz VCC = 3.3 V –600 kHz f = 1900 MHz VAGC = VCC (GPMAX) f = 1900 MHz VCC = 3.0 V Δ Δ Δ Δ Δ Δ µµµµPC8120T
µµµµPC8119T, µµµµPC8120T PACKAGE D IMENSIONS
6 PIN MINIMOLD PACKAGE (UNITS: mm)
0.3 12 3 0.95 0.95 0.8 0 – 0.1 0.13–0.1 1.9 2.9–0.2 +0.1 –0.0 1.1 +0.2 –0.1 1.5 +0.2 –0.1 2.8 +0.2 –0.3 0.2 MIN.
µµµµPC8119T, µµµµPC8120T NOTES ON CORRECT USE (1) Observe precautions for handling because of electro-static sensitive devices. (2) Form a ground pattern as wide as possible to minimize ground impedance (to prevent undesired oscillation). (3) Keep the track length of the ground pins as short as possible. (4) A low pass filter must be attached to V CC line. (5) A matching circuit must be externally attached to output port. RECOMMENDED SOLDERING CONDITIONS This product should be soldered under the following recommended conditions. For soldering methods and conditions other than those recommended below, contact your NEC sales representative. µµµµPC8119T, µµµµPC8120T Soldering Method Soldering Conditions Recommended Condition Symbol Infrared Reflow Package peak temperature: 235°C or below Time: 30 seconds or less (at 210°C) Count: 3, Exposure limit Note : None IR35-00-3 Time: 40 seconds or less (at 200°C) Count: 3, Exposure limit Note : None VP15-00-3 Wave Soldering Soldering bath temperature: 260°C or below Time: 10 seconds or less Count: 1, Exposure limit Note : None WS60-00-1 Partial Heating Pin temperature: 300°C Time: 3 seconds or less (per side of device) Exposure limit Note : None Note After opening the dry pack, keep it in a place below 25°C and 65% RH for the allowable storage period. Caution Do not use different soldering methods together (except for partial heating). For details of the recommended soldering conditions for surface mounting, refer to information document SEMICONDUCTOR DEVICE MOUNTING TECHNOLOGY MANUAL (C10535E).
µµµµPC8119T, µµµµPC8120T [MEMO]
µµµµPC8119T, µµµµPC8120T [MEMO]
µµµµPC8119T, µµµµPC8120T [MEMO]
µµµµPC8119T, µµµµPC8120T The application circuits and their parameters are for reference only and are not intended for use in actual design-ins. NESAT (NEC Silicon Advanced Technology) is a trademark of NEC Corporation. No part of this document may be copied or reproduced in any form or by any means without the prior written consent of NEC Corporation. NEC Corporation assumes no responsibility for any errors which may appear in this document. NEC Corporation does not assume any liability for infringement of patents, copyrights or other intellectual property rights of third parties by or arising from use of a device described herein or any other liability arising from use of such device. No license, either express, implied or otherwise, is granted under any patents, copyrights or other intellectual property rights of NEC Corporation or others. While NEC Corporation has been making continuous effort to enhance the reliability of its semiconductor devices, the possibility of defects cannot be eliminated entirely. To minimize risks of damage or injury to persons or property arising from a defect in an NEC semiconductor device, customers must incorporate sufficient safety measures in its design, such as redundancy, fire-containment, and anti-failure features. NEC devices are classified into the following three quality grades: "Standard", "Special", and "Specific". The Specific quality grade applies only to devices developed based on a customer designated "quality assurance program" for a specific application. The recommended applications of a device depend on its quality grade, as indicated below. Customers must check the quality grade of each device before using it in a particular application. Standard: Computers, office equipment, communications equipment, test and measurement equipment, audio and visual equipment, home electronic appliances, machine tools, personal electronic equipment and industrial robots Special: Transportation equipment (automobiles, trains, ships, etc.), traffic control systems, anti-disaster systems, anti-crime systems, safety equipment and medical equipment (not specifically designed for life support) Specific: Aircrafts, aerospace equipment, submersible repeaters, nuclear reactor control systems, life support systems or medical equipment for life support, etc. The quality grade of NEC devices is "Standard" unless otherwise specified in NEC's Data Sheets or Data Books. If customers intend to use NEC devices for applications other than those specified for Standard quality grade, they should contact an NEC sales representative in advance. Anti-radioactive design is not implemented in this product. M4 96. 5