UPC8130TA NEC | Alldatasheet

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The information in this document is subject to change without notice. BIPOLAR ANALOG INTEGRATED CIRCUITS µµµµPC8130TA, µµµµPC8131TA –15 dBm INPUT, VARIABLE GAIN AMPLIFIER SILICON MMIC FOR TRANSMITTER AGC OF DIGITAL CELLULAR TELEPHONE 1997© Document No. P11721EJ2V0DS00 (2nd edition) Date Published October 1998 N CP(K) Printed in Japan DATA SHEET The mark shows major revised points.

DESCRIPTION

The µPC8130TA and µPC8131TA are silicon monolithic integrated circuits designed as variable gain amplifier. Due to 800 MHz to 1.5 GHz operation, these ICs are suitable for RF transmitter AGC stage of digital cellular telephone. These ICs are lower distortion than conventional µPC8119T and µPC8120T so that –15 dBm input level can be applied. These ICs also available in two types of gain control so you can choose either IC in accordance with your system design. 3 V supply voltage and minimold package contribute to make your system lower voltage, decreased space and fewer components. The µPC8130TA and µPC8131TA are manufactured using NEC’s 20 GHz fT NESAT™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 = 800 MHz to 1.5 GHz
  • Low distortion : P adj ≤ –60 dBc MAX. @Pin = –15 dBm, Δf = ±50 kHz, VCC = 3.0 V, TA = +25 °C
  • Supply voltage : V CC = 2.7 to 3.3 V
  • Low current consumption : I CC = 11 mA TYP. @VCC = 3.0 V
  • Gain control voltage : V AGC = 0 to 2.4 V (recommended)
  • Two types of gain control : µPC8130TA = VAGC up vs. Gain up (Reverse control) µPC8131TA = VAGC up vs. Gain down (Forward control)
  • AGC control can be constructed by external control circuit.
  • High-density surface mounting : 6 pin minimold package APPLICATION
  • 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 µPC8130TA-E3 C2Q Reverse control µPC8131TA-E3 C2R Forward control Remark To order evaluation samples, please contact your local NEC sales office. (Part number for sample order: µPC8130TA, µPC8131TA) Caution Electro-static sensitive devices. 6-pin minimold Embossed tape 8 mm wide. 1, 2, 3 pins face to perforation side of the tape. Qty 3 kp/reel.

µµµµPC8130TA, µµµµPC8131TA (Top View) (Bottom View) C2Q PIN CONNECTIONS Marking is an example of µPC8130TA GAIN CONTROL 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) Pin (dBm) 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 This block diagram is an example of IF modulation digital cellular system. The µPC8130TA and µPC8131TA are applicable for not only IF modulation system but also RF modulation system. This diagram is intended to show the µPC8130TA and µPC8131TA location in the systems. RX DEMO I Q SW TX PA PC8130TA or PC8131TA µ µ ÷N PLL φ 0 ° 90 ° Q I PLL This document is to be specified for µPC8130TA and µPC8131TA only. For the other part number mentioned in this document, please refer to the latest data sheet of each part number. Pin No. Pin Name

1 INPUT

µµµµPC8130TA, µµµµPC8131TA Bias circuit GND Control circuit Control circuit PIN EXPLANATION Pin No. Pin Name Applied Voltage V Pin Voltage V Note Function and Applications Internal Equivalent Circuit 1 IN – 1.4 RF input pin. This pin should be coupled with capacitor (eg 1000 pF) for DC cut. Input return loss can be improved with external impedance matching circuit. GND 0 − Ground pin. This pin should be connected to system ground with minimum inductance. Ground patt- ern on the board should be formed as wide as possible. Ground pins must be connected together with wide ground pattern to decrease impedance difference.

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. 5V CC 2.7 to 3.3 – Supply voltage pin. This pin must be equipped with bypass capacitor (eg 1000 pF) to minimize its RF impedance. 6V AGC 0 to 3.3 − Gain control pin. The relation between product number and control performance is shown below; Note Pin voltage is measured at VCC = 3.0 V. Part No. V AGC up vs. Gain µPC8130TA up µPC8131TA down

µµµµPC8130TA, µµµµPC8131TA ABSOLUTE MAXIMUM RATINGS Parameter Symbol Conditions Ratings Unit Supply Voltage V CC TA = +25 °C, Pin 4 and 5 3.6 V Total Circuit Current I CC TA = +25 °C, Pin 4 and 5 30 mA Input Power P in TA = +25 °C +10 dBm Gain Control Voltage V AGC TA = +25 °C 3.6 V Operating Ambient Temperature T A –25 to +85 °C Storage Temperature T stg –55 to +150 °C RECOMMENDED OPERATING CONDITIONS Parameter Symbol MIN. TYP. MAX. Unit Remarks 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 – 2.4 V –0.5 ≤ IAGC ≤ 0.1 mA Input Level P in – – –15 dBm Padj ≤ –60 dBc @Δf = ±50 kHz Note Operating Ambient Temperature T A –25 +25 +85 °C Operating Frequency f 800 – 1500 MHz With external output-matching AGC Pin Drive Current I AGC 0.5 – – mA V AGC ≤ 3.3 V Note Adjacent Channel Interference (Padj) wave form condition: π/4DQPSK modulation signal, data rate = 42 kbps, rolloff ratio = 0.5, PN9 bits (pseudorandom pattern)

µµµµPC8130TA, µµµµPC8131TA UnitTest ConditionsSymbolParameter ELECTRICAL CHARACTERISTICS (Unless otherwise specified, TA = +25 °C, VCC = Vout = 3.0 V, ZS = ZL = 50 ΩΩΩΩ , External matched output port) µPC8130TA µPC8131TA Circuit Current I CC No signal, ICC = IVcc + Iout 8.5 11 15 8.5 11 15 mA Maximum Power Gain G PMAX f = 950 MHz, Pin = –20 dBm f = 1440 MHz, Pin = –20 dBm 12.5 9.5 14.5 dB Gain Control Range Note1 GCR f = 950 MHz, P in = –20 dBm f = 1440 MHz, Pin = –20 dBm dB Minimum Power Gain G PMIN f = 950 MHz, Pin = –20 dBm f = 1440 MHz, Pin = –20 dBm –37 –30 –33 –28 dB Adjacent Channel Interference (@ Δf = ±50 kHz Note 2 Padj f = 950 MHz, Pin = –15 dBm f = 1440 MHz, Pin = –15 dBm –65 –65 –60 –60 –65 –65 –60 –60 dB Isolation ISL f = 950 MHz, G PMAX f = 1440 MHz, GPMAX dB 1 dB Compression Output Power PO (1 dB) f = 950 MHz, GPMAX f = 1440 MHz, GPMAX dBm Input Return Loss RL in f = 950 MHz, GPMAX f = 1440 MHz, GPMAX 3.5 6.5 6.5 10.5 dB Noise Figure NF f = 950 MHz, G PMAX f = 1440 MHz, GPMAX 8.5 11.5 dB Notes 1. Gain Control Range (GCR) specification: GCR = GPMAX – GPMIN (dB) Conditions µPC8130TA: GPMAX @ V AGC = VCC , GPMIN @ V AGC = 0 V µPC8131TA: GPMAX @ V AGC = 0 V, GPMIN @ V AGC = VCC 2. Adjacent Channel Interference (Padj) wave form condition: π/4DQPSK modulation signal, data rate = 42 kbps, rolloff ratio = 0.5, PN9 bits (pseudorandom pattern) Remark Measured on TEST CIRCUIT 1 and 2

µµµµPC8130TA, µµµµPC8131TA TEST CIRCUIT1 (f = 950 MHz, both products in common) VAGC Output matching circuit 1000 pF OUT VCC C5 C6 2, 3 4IN ILLUSTRATION OF TEST CIRCUIT1 ASSEMBLED ON EVALUATION BOARD OUT IN IN OUT C6L1 C5C3 AGC VAGC VCC PC8130/31TAµ COMPONENT LIST Form Symbol Value Makers Product Name C1, C3 to C6 1000 pF Murata Mfg. Co., Ltd. GRM39 seriesChip capacitor C2 1.5 pF Murata Mfg. Co., Ltd. GRM39 series L1 4.5 nH (10 nH, 8.2 nH, parallel) Toko Co., Ltd. LL1608-FChip inductor L2 270 nH Toko Co., Ltd. LL2012-F Caution 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.

µµµµPC8130TA, µµµµPC8131TA TEST CIRCUIT2 (f = 1440 MHz, both products in common) VAGC Output matching circuit 1000 pF OUT VCC C5 C6 2, 3 4IN ILLUSTRATION OF TEST CIRCUIT2 ASSEMBLED ON EVALUATION BOARD PC8130/31TA OUT IN IN OUT C6L1 C5C3 VAGC VCC µ AGC COMPONENT LIST Form Symbol Value Makers Product Name C1, C3 to C6 1000 pF Murata Mfg. Co., Ltd. GRM39 seriesChip capacitor C2 1.5 pF Murata Mfg. Co., Ltd. GRM39 series L1 1.2 nH Toko Co., Ltd. LL1608-FChip inductor L2 270 nH Toko Co., Ltd. LL2012-F Caution 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.

µµµµPC8130TA, µµµµPC8131TA APPLICATION EXPLANATION The µPC8130TA and µPC8131TA has difference in internal circuit in order to reduce the number of external component with µPC8119T and µPC8120T. For this reason, they have difference in mechanism for determing minimum gain and external suitable constant. Determing Minimum Gain External Feedback Capacitor of VCC to VAGC Pin Optimize Choke Inductance of π Type Circuit on VCC Line µPC8119T µPC8120T High frequency negative feed back between OUT, VCC and VAGC pin optimized by external choke inductance. Necessary The impedance of inductance should be very low at high frequency region. µPC8130TA µPC8131TA Isolation of VCC to OUT pin optimized by external choke inductance. Unnecessary The impedance of inductance should be very high at high frequency region.

µµµµPC8130TA, µµµµPC8131TA TYPICAL CHARACTERISTICS µµµµPC8130TA 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 VCC PIN vs. GAIN CONTROL VOLTAGE 0 0.5 1 1.5 2 Supply Voltage V CC (V) Circuit Current ICC (mA) 2.5 3 3.5 4 0.2 0.18 0.16 0.14 0.12 0.1 0.08 0.06 0.04 0.02 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Gain Control Current IAGC (mA) 2.5 3 3.5 4 0-40 -20 0 20 40 Operating Ambient Temperature T A (°C) Circuit Current ICC (mA) 60 80 100 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Current into Output pin IOUT (mA) Current into VCC pin IVCC (mA) 2.5 3 3.5 4 no signals no signals no signals no signals S11 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm S11 : 950 MHz 69.594 Ω −8.9766 Ω : 1.44 GHz 58.973 Ω −22.688 Ω : 1.9 GHz 48.133 Ω −23.941 Ω START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm S22 : 950 MHz 15.859 Ω −208.8 Ω : 1.44 GHz 32.234 Ω −150.07 Ω : 1.9 GHz 24.711 Ω −131.8 Ω START 800.000 000 MHz STOP 2 700.000 000 MHz VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = .3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V Iout IVCC

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 950 MHz S11 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −6.8118 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz S11 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −5.9537 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz S22 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −13.235 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz S22 vs. FREQUENCY VCC = VAGC = 3.0 V(GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −12.477 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz VCC = VAGC = 3.0 V(GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S11 vs. FREQUENCY 1: 65.098 Ω −56.266 Ω 2.9775 pF 950.000 000 MHz MARKER 1

950 MHz

VCC = VAGC = 3.0 V(GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY 1: 69.219 Ω 13.313 Ω 2.2303 nH 950.000 000 MHz MARKER 1 VCC = 3.3 V TA = −25 °C TA = +25 °C TA = +85 °C TA = −25 °C TA = +25 °CTA = +85 °C VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 950 MHz S21 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm S 21 log MAG 1: 12.811 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 7 dB 950.000 000 MHz S21 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm S 21 log MAG 1: 12.714 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 7 dB 950.000 000 MHz S12 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −20.189 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz S12 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −20.255 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz VCC = 3.3 V TA = −25 °C TA = +25 °C TA = +85 °C TA = +25 °C TA = −25 °C TA = +85 °C VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V 1 1

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 950 MHz POWER GAIN vs. GAIN CONTROL VOLTAGE S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S21 log MAG 1: −36.686 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S12 log MAG 1: −20.344 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = -20 dBm −40 −20 S11 log MAG 1: −6.9044 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = -20 dBm −40 −20 S22 log MAG 1: −12.969 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 POWER GAIN vs. GAIN CONTROL VOLTAGE −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.3 V VAGC = 0.9 V VAGC = 3.0 V VAGC = 2.2 V VAGC = 2.0 V VAGC = 1.9 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 = 1.0 V VAGC = 3.0 V VAGC = 2.0 V VAGC = 1.6 V VAGC = 0 to 1.0 V VAGC = 0.2 V VAGC = 0 V VAGC = 0 VVAGC = 3.0 V VAGC = 1.55 V VCC = 3.0 V VCC = 2.7 V VAGC = 1.7 V VAGC = 3.0 V VAGC = 0 V VAGC = 2.05 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 950 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER −10 −15 −20 −20 −15 −10 −50 5 Input Power P in (dBm) Output Power Pout (dBm) −10 −20 −30 −40 −50 −60 −70 Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER −10 −20 −30 −40 −50 −60 −70 Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER −10 −20 −30 −40 −50 −60 −70 Input Power Pin (dBm) Output Power Pout (dBm) f = 950 MHz VAGC = VCC f = 950 MHz V CC = 3.0 V f = 950 MHz V CC = 3.3 V f = 950 MHz V CC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 3.3 V VAGC = 3.0 V VAGC = 2.7 V VAGC = 1.7 V VAGC = 1.45 V VAGC = 1.3 V VAGC = 1.15 V VAGC = 0 V VAGC = 1.5 V VAGC = 1.3 V VAGC = 1.1 V VAGC = 0.95 V VAGC = 0 V VAGC = 1.3 V VAGC = 1.1 V VAGC = 0.95 V VAGC = 0.75 V VAGC = 0 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 950 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) VCC = 3.0 V VAGC = 3.0 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 1.55 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 1.3 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 1.15 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 0 V f1 = 950 MHz f2 = 951 MHz Pout IM3 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) Pout IM3 2f1-f2 (949 MHz)2f2-f1 (952 MHz) Pout IM3 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) Pout IM3 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) Pout IM32f1-f2 (949 MHz) 2f2-f1 (952 MHz)

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 950 MHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 −30 −35 −40 −45 −50 −55 −60 −65 −70 −20 −15 −10 −50 5 Input Power Pin (dBm) Adjacent Channel Interference Padj (dBc) TA = +25 °C Pin = −13 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = +85 °C Pin = −13 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = −25 °C Pin = −13 dBm ±50 KHz VAGC = VCC VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 1440 MHz S11 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −9.8796 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 1 440.000 000 MHz S11 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −9.5571 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB S22 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −14.444 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB S22 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −14.139 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 1 440.000 000 MHz1 440.000 000 MHz 1 440.000 000 MHz VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S11 vs. FREQUENCY 1: 51.363 Ω −34.424 Ω 3.2107 pF 1 440.000 000 MHz MARKER 1

1.44 GHz

VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY 1: 37.857 Ω −11.791 Ω 9.3736 pF 1 440.000 000 MHz MARKER 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 TA = −25 °C TA = +25 °C TA = +85 °C TA = −25 °C TA = +25 °C TA = +85 °C

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 1440 MHz S21 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm S 21 log MAG 1: −11.31 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 5 dB 1 440.000 000 MHz S21 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm S 21 log MAG 1: −11.291 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 5 dB S12 vs. FREQUENCY VAGC = VCC (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −25.647 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB S12 vs. FREQUENCY VCC = VAGC = 3.0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −25.515 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 1 440.000 000 MHz1 440.000 000 MHz 1 440.000 000 MHz VCC = 3.3 V TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.0 V VCC = 2.7 V 1 1 TA = +85 °C TA = +25 °C TA = −25 °C VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 1440 MHz POWER GAIN vs. GAIN CONTROL VOLTAGE S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S21 log MAG 2: 10.863 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S12 log MAG 1: −25.759 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = -20 dBm −40 −20 S11 log MAG 1: −9.9621 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S22 log MAG 1: −13.275 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 POWER GAIN vs. GAIN CONTROL VOLTAGE −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 1 440.000 000 MHz1 440.000 000 MHz 1 440.000 000 MHz 1: −6.6158 dB 3: 5.9184 dB

1.9 GHz

1 440.000 000 MHz TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 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 = 1.0 V VAGC = 0.8 V VAGC = 0 V VAGC = 3.0 V VAGC = 1.7 V VAGC = 0 to 1.0 V VAGC = 3.0 V VAGC = 0 V VAGC = 1.7 V VAGC = 3.0 V VAGC = 0 V VAGC = 1.65 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 1440 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER −10 −15 −20 −20 −15 −10 −50 5 Input Power P in (dBm) Output Power Pout (dBm) −10 −20 −30 −40 −50 −60 −70 Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER −10 −20 −30 −40 −50 −60 −70 Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER −10 −20 −30 −40 −50 −60 −70 Input Power Pin (dBm) Output Power Pout (dBm) f = 1440 MHz VAGC = VCC f = 1440 MHz V CC = 3.0 V f = 1440 MHz V CC = 3.3 V f = 1440 MHz V CC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 3.3 V VAGC = 1.65 V VAGC = 1.45 V VAGC = 1.3 V VAGC = 1.15 V VAGC = 0 V VAGC = 3.0 V VAGC = 1.5 V VAGC = 1.15 V VAGC = 1.25 V VAGC = 0.95 V VAGC = 0 V VAGC = 2.7 V VAGC = 1.3 V VAGC = 1.1 V VAGC = 0.95 VVAGC = 0.75 V VAGC = 0 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 1440 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) VCC = 3.0 V VAGC = 3.0 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.5 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.25 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.1 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 0 V f1 = 1440 MHz f2 = 1441 MHz Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) Pout IM3 2f2-f1 (1442 MHz) Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) Pout IM3 2f2-f1 (1442 MHz) 2f1-f2 (1439 MHz) 2f1-f2 (1439 MHz)

µµµµPC8130TA, µµµµPC8131TA µµµµPC8130TA Output port matching at f = 1440 MHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 −30 −35 −40 −45 −50 −55 −60 −65 −70 −20 −15 −10 −50 5 Input Power Pin (dBm) Adjacent Channel Interference Padj (dBc) TA = +25 °C Pin = −15 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = +85 °C Pin = −13 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = −25 °C Pin = −15 dBm ±50 KHz VAGC = VCC VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V

µµµµPC8130TA, µµµµPC8131TA TYPICAL CHARACTERISTICS µµµµPC8131TA 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 VCC PIN vs. GAIN CONTROL VOLTAGE 0 0.5 1 1.5 2 Supply Voltage V CC (V) Circuit Current ICC (mA) 2.5 3 3.5 4 0.5 0.4 0.3 0.2 0.1 −0.1 −0.2 −0.3 −0.4 −0.5 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Gain Control Current IAGC (mA) 2.5 3 3.5 4 0−40 −20 0 20 40 Operating Ambient Temperature T A (°C) Circuit Current ICC (mA) 60 80 100 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Current into Output pin IOUT (mA) Current into VCC pin IVCC (mA) 2.5 3 3.5 4 no signals no signals no signals no signals S11 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = -20 dBm S11 : 949.4 MHz 72.504 Ω −14.266 Ω : 1.44 GHz 58.012 Ω −25.781 Ω : 1.9 GHz 48.307 Ω −26.266 Ω START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = -20 dBm S22 : 950 MHz 30.711 Ω −210.3 Ω : 1.44 GHz 35.516 Ω −158.06 Ω : 1.9 GHz 19.758 Ω −131.8 Ω START 800.000 000 MHz STOP 2 700.000 000 MHz VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = .3.3 V VCC = 3.0 V VCC = 2.7 V Iout IVCC

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 950 MHz S11 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −8.9634 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz −30 −20 −10 START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm S22 log MAG 1: −19.264 dB5 dB/REF 0 dB 950.000 000 MHz −30 −20 −10 START 100.000 000 MHz STOP 3 100.000 000 MHz S11 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm S11 log MAG 1: −2.0122 dB5 dB/REF 0 dB 950.000 000 MHz S22 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −18.936 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S11 vs. FREQUENCY 1: 66.246 Ω −41.039 Ω 4.0822 pF 950.000 000 MHz MARKER 1 VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY 1: 57.439 Ω 3.3594 Ω 562.8 pH 950.000 000 MHz MARKER 1 VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.3 V VCC = 2.7 V VCC = 3.0 V TA = −25 °C TA = +25 °C TA = +85 °C

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 950 MHz S21 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm S 21 log MAG 1: 11.909 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 7 dB 950.000 000 MHz S21 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm S 21 log MAG 1: 11.894 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 7 dB 950.000 000 MHz S12 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −24.468 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz S12 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −24.393 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 950.000 000 MHz VCC = 3.3 V TA = −25 °C TA = +25 °C TA = +85 °C TA = −25 °C VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V 1 1

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 950 MHz POWER GAIN vs. GAIN CONTROL VOLTAGE S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S21 log MAG 1: −34.406 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S12 log MAG 1: −24.537 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S11 log MAG 1: −8.9126 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S22 log MAG 1: −19.505 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB 950.000 000 MHz −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 POWER GAIN vs. GAIN CONTROL VOLTAGE −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 1.0 V VAGC = 0 VVAGC = 1.5 V VAGC = 2.0 to 3.0 V VAGC = 3.0 V VAGC = 1.1 V VAGC = 0 V VAGC = 1.1 V VAGC = 3.0 V VAGC = 1.8 V VAGC = 0 V VAGC = 0.45 V VAGC = 2.0 V VAGC = 0 V VAGC = 0.5 V VAGC = 0.7 V VAGC = 0.9 V VAGC = 1.1 V VAGC = 1.3 V VAGC = 1.4 V VAGC = 1.5 V VAGC = 1.6 V VAGC = 1.7 V VAGC = 1.8 V VAGC = 1.9 V VAGC = 2.1 V VAGC = 3.0 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 950 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER -10 -15 -20 -20 -15 -10 -5 0 5 Input Power P in (dBm) Output Power Pout (dBm) -10 -20 -30 -40 -50 -60 -70 -30 -25 -20 -15 -10 -5 0 5 Input Power P in (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER -10 -20 -30 -40 -50 -60 -70 -30 -25 -20 -15 -10 -5 0 5 Input Power P in (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER -10 -20 -30 -40 -50 -60 -70 -30 -25 -20 -15 -10 -5 0 5 Input Power P in (dBm) Output Power Pout (dBm) f = 950 MHz VAGC = 0 V f = 950 MHz V CC = 3.0 V f = 950 MHz V CC = 3.3 V f = 950 MHz V CC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 0 V VAGC = 0 V VAGC = 1.5 V VAGC = 1.8 V VAGC = 1.95 V VAGC = 2.15 V VAGC = 3.3 V VAGC = 1.5 V VAGC = 1.75 V VAGC = 1.95 V VAGC = 2.15 V VAGC = 3.0 V VAGC = 0 V VAGC = 1.5 V VAGC = 1.75 V VAGC = 1.9 V VAGC = 2.1 V VAGC = 2.7 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 950 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) VCC = 3.0 V VAGC = 0 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 1.15 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 1.55 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 1.75 V f1 = 950 MHz f2 = 951 MHz VCC = 3.0 V VAGC = 3.0 V f1 = 950 MHz f2 = 951 MHz Pout IM3 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) Pout IM3 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) Pout 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) Pout IM3 2f1-f2 (949 MHz) 2f2-f1 (952 MHz) IM3 IM3 Pout

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 950 MHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 −30 −35 −40 −45 −50 −55 −60 −65 −70 −20 −15 −10 −50 5 Input Power Pin (dBm) Adjacent Channel Interference Padj (dBc) TA = +25 °C Pin = −15 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = +85 °C Pin = −13 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = −25 °C Pin = −19 dBm –50 KHz VAGC = 0 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 2.7 V VCC = 3.0 V VCC = 3.3 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 1440 MHz S11 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −10.576 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 1 440.000 000 MHz S22 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −15.766 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB S11 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S11 log MAG 1: −10.784 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB S22 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S22 log MAG 1: −15.915 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 1 440.000 000 MHz1 440.000 000 MHz 1 440.000 000 MHz VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S11 vs. FREQUENCY 1: 57.025 Ω −32.578 Ω 3.3926 pF 1 440.000 000 MHz MARKER 1 VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm START 100.000 000 MHz STOP 3 100.000 000 MHz S22 vs. FREQUENCY 1: 40.016 Ω −8.582 Ω 12.879 pF 1 440.000 000 MHz MARKER 1 VCC = 3.3 VVCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V TA = −25 °C TA = +25 °C TA = +85 °C TA = −25 °C TA = +25 °C TA = +85 °C

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 1440 MHz S21 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm S 21 log MAG 1: 10.951 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 5 dB 1 440.000 000 MHz S21 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm S 21 log MAG 1: 10.957 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 1 dB/REF 5 dB S12 vs. FREQUENCY VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −29.767 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB S12 vs. FREQUENCY VCC = 3.0 V, VAGC = 0 V (GPMAX), Pin = −20 dBm −30 −20 −10 S12 log MAG 1: −30.004 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 5 dB/REF 0 dB 1 440.000 000 MHz1 440.000 000 MHz 1 440.000 000 MHz VCC = 3.3 V TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.0 V VCC = 2.7 V 1 1 TA = −25 °C TA = +25 °C TA = +85 °C VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V1

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 1440 MHz POWER GAIN vs. GAIN CONTROL VOLTAGE S21 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S21 log MAG 1: 10.967 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB S12 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S12 log MAG 1: −29.705 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB S11 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S11 log MAG 1: −10.499 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB S22 vs. FREQUENCY DEPENDENCE OF GAIN CONTROL VOLTAGE VCC = 3.0 V, Pin = −20 dBm −40 −20 S22 log MAG 1: −14.578 dB START 100.000 000 MHz STOP 3 100.000 000 MHz 10 dB/REF 0 dB −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 POWER GAIN vs. GAIN CONTROL VOLTAGE −10 −15 −20 −25 −30 −35 −40 0 0.5 1 1.5 2 Gain Control Voltage V AGC (V) Power Gain GP (dB) 2.5 3 3.5 4 1 440.000 000 MHz1 440.000 000 MHz 1 440.000 000 MHz1 440.000 000 MHz TA = -25 °C TA = +25 °C TA = +85 °C VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 1 V VAGC = 1.5 V VAGC = 2.0 to 3.0 V VAGC = 0 V VAGC = 3.0 V VAGC = 0 V 1 VAGC = 3.0 V VAGC = 0 V VAGC = 1.15 V1 VAGC = 0 V VAGC = 0.5 V VAGC = 0.7 V VAGC = 0.8 V VAGC = 0.9 V VAGC = 1.0 V VAGC = 1.2 V VAGC = 1.3 V VAGC = 1.4 V VAGC = 1.5 V VAGC = 1.6 V VAGC = 1.7 V VAGC = 1.8 V VAGC = 1.9 V VAGC = 2.0 V VAGC = 3.0 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 1440 MHz OUTPUT POWER vs. INPUT POWER OUTPUT POWER vs. INPUT POWER −10 −15 −20 −20 −15 −10 −50 5 Input Power P in (dBm) Output Power Pout (dBm) −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Output Power Pout (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Output Power Pout (dBm) f = 1440 MHz VAGC = 0 V f = 1440 MHz V CC = 3.0 V −10 −20 −30 −40 −50 f = 1440 MHz VCC = 2.7 V −10 −20 −30 −40 −50 −60−60 f = 1440 MHz VCC = 3.3 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VAGC = 0 V VAGC = 1.3 V VAGC = 1.6 V VAGC = 1.8 V VAGC = 3.3 V VAGC = 1.3 V VAGC = 3.0 V VAGC = 1.8 V VAGC = 1.6 V VAGC = 0 V VAGC = 2.7 V VAGC = 1.8 V VAGC = 1.6 V VAGC = 1.3 V VAGC = 0 V

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 1440 MHz OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) OUTPUT POWER AND IM 3 vs. INPUT POWER −10 −20 −30 −40 −50 −60 Input Power Pin (dBm) Output Power of each tone Pout (dBm) Third Order Intermodulation Distortion IM3 (dBm) VCC = 3.0 V VAGC = 0 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.3 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.6 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 1.8 V f1 = 1440 MHz f2 = 1441 MHz VCC = 3.0 V VAGC = 3.0 V f1 = 1440 MHz f2 = 1441 MHz Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) Pout IM3 Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) Pout IM3 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz) 2f1-f2 (1439 MHz) 2f2-f1 (1442 MHz)

µµµµPC8130TA, µµµµPC8131TA µµµµPC8131TA Output port matching at f = 1440 MHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE ADJACENT CHANNEL INTERFERENCE vs. INPUT POWER −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 −30 −35 −40 −45 −50 −55 −60 −65 −70 −20 −15 −10 −50 5 Input Power Pin (dBm) Adjacent Channel Interference Padj (dBc) TA = +25 °C Pin = −15 dBm ±50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = +85 °C Pin = −13 dBm –50 KHz ADJACENT CHANNEL INTERFERENCE vs. GAIN CONTROL VOLTAGE −50 −55 −60 −65 −70 −750 0.5 1 1.5 2 Gain Control Voltage VAGC (V) Adjacent Channel Interference Padj (dBc) 2.5 3 3.5 4 TA = −25 °C Pin = −19 dBm –50 KHz VAGC = 0 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V VCC = 3.3 V VCC = 3.0 V VCC = 2.7 V

µµµµPC8130TA, µµµµPC8131TA PACKAGE DIMENSIONS

6 PIN MINI-MOLD PACKAGE (UNIT: mm)

2.8 +0.2 –0.3 0 to 0.1 1.5 +0.2 –0.1 0.3 +0.1 –0.0 12 3 65 4 0.95 0.95 1.9 2.9 ±0.2 0.13 ±0.1 0.8 1.1 +0.2 –0.1

µµµµPC8130TA, µµµµPC8131TA 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). All the ground pins must be connected together with wide ground pattern to decrease impedance difference. (3) The bypass capacitor (eg. 1000 pF) should be attached to the VCC pin. (4) Impedance matching circuit must be each externally attached to input and output ports. (5) The bias must be applied to output pin through the matching inductor. (The bias must not be applied to input pin.) 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. 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 recommended soldering conditions for surface mounting, refer to information document SEMICONDUCTOR DEVICE MOUNTING TECHNOLOGY MANUAL (C10535E).

µµµµPC8130TA, µµµµPC8131TA [MEMO]

µµµµPC8130TA, µµµµPC8131TA [MEMO]

µµµµPC8130TA, µµµµPC8131TA [MEMO]

µµµµPC8130TA, µµµµPC8131TA ATTENTION OBSERVE PRECAUTIONS FOR HANDLING ELECTROSTATIC SENSITIVE DEVICES 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