UPC3225TB CEL | Alldatasheet
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Technical content
DESCRIPTION
PC3225TB is a silicon germanium (SiGe) monolithic integrated circuits designed as IF amplifier for DBS tuners. This IC is manufactured using our 50 GHz f max UHS2 (UltraH ighS peed Process) SiGe bipolar process.
FEATURES
- Wideband response : f u = 2.8 GHz TYP. @ 3 dB bandwidth
- Low current : ICC = 24.5 mA TYP.
- Medium output power : P O (sat) = +15.5 dBm TYP. @ f = 0.95GHz : PO (sat) = +12.5 dBm TYP. @ f = 2.15 GHz
- High linearity : PO (1dB) = +9.0 dBm TYP. @ f = 0.95 GHz : PO (1dB) = +7.0 dBm TYP. @ f = 2.15 GHz
- Power gain : GP = 32.5 dB TYP. @ f = 0.95 GHz : GP = 33.5 dB TYP. @ f = 2.15 GHz
- Noise Figure : NF = 3.7 dB TYP. @ f = 0.95 GHz : NF = 3.7 dB TYP. @ f = 2.15 GHz
- Supply voltage : VCC = 4.5 to 5.5 V
- Port impedance : input/output 50
APPLICATIONS
- IF amplifiers in LNB for DBS converters etc.
ORDERING INFORMATION
Part Number Order Number Package Marking Supplying Form PC3225TB-E3 PC3225TB-E3-A6-pin super minimold (Pb-Free) Note C3M Embossed tape 8 mm wide. 1, 2, 3 pins face the perforation side of the tape. Qty 3 kpcs/reel. Note With regards to terminal solder (the solder contains lead) plated products (conventionally plated), contact your nearby sales office. Remark To order evaluation samples, please contact your nearby sales office Part number for sample order: PC3225TB. CautionObserve precautions when handling because these devices are sensitive to electrostatic discharge. BIPOLAR ANALOG INTEGRATED CIRCUIT UPC3225TB
5 V, SILICON GERMANIUM MMIC
MEDIUM OUTPUT POWER AMPLIFIER Document No. PU10500EJ01V0DS (1st edition) Date Published December 2004 CP(K) NEC Compound Semiconductor Devices, Ltd. 2004
Pin No. Pin Name
1 OUTPUT
2 GND
3 VCC
4 INPUT
5 GND
(Top View) (Bottom View)
6 GND
PRODUCT LINE-UP OF 5 V-BIAS SILICONMMIC MEDIUM OUTPUT POWER AMPLIFIER (TA = +25°C, f = 1 GHz, VCC = Vout = 5.0 V, ZS = ZL = 50 ) Part No. fu (GHz) PO (sat) (dBm) GP (dB) NF (dB) ICC (mA) Package Marking PC2708TB 2.9 +10.0 15 6.5 26 6-pin super minimold C1D PC2709TB 2.3 +11.5 23 5.0 25 C1E PC2710TB 1.0 +13.5 33 3.5 22 C1F PC2776TB 2.7 +8.5 23 6.0 25 C2L PC3223TB 3.2 +12.0 23 4.5 19 C3J Note f = 0.95 GHz Remark Typical performance. Please refer to ELECTRICAL CHARACTERISTICS in detail. Data Sheet PU10500EJ01V0DS2 UPC3225TB
No. Pin Name Applied Voltage (V) Pin Voltage (V) Note Function and Applications 0.98 Signal input pin. A internal matching circuit, configured with resistors, enables 50 connection over a wide band. A multi-feedback circuit is designed to cancel the deviations of h FE and resistance. This pin must be coupled to signal source with capacitor for DC cut.
1 OUTPUT Voltage
Signal output pin. The inductor must be attached between V CC and output pins to supply current to the internal output transistors. 3 VCC 4.5 to 5.5 Power supply pin. Which biases the internal input transistor. This pin should be externally equipped with bypass capacitor to minimize its impedance. 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. All the ground pins must be connected together with wide ground pattern to decrease impedance defference. Note Pin voltage is measured at VCC = 5.0 V Data Sheet PU10500EJ01V0DS 3 UPC3225TB
Parameter Symbol Conditions Ratings Unit Supply Voltage VCC TA = +25°C, Pin 1 and 3 6 V Total Circuit Current ICC TA = +25°C 45 mA Power Dissipation PD TA = +85 C Note 270 mW Operating Ambient Temperature TA 40 to +85 °C Storage Temperature Tstg 55 to +150 °C Input Power Pin TA = +25°C 0 dBm Note Mounted on double-sided copper-clad 50 1.6 mm epoxy glass PWB RECOMMENDED OPERATING RANGE Parameter Symbol Conditions MIN. TYP. MAX. Unit Supply Voltage VCC The same voltage should be applied to pin 1 and 3. 4.5 5.0 5.5 V Operating Ambient Temperature TA 40 +25 +85 °C ELECTRICAL CHARACTERISTICS (TA = +25°C, VCC = Vout = 5.0 V, ZS = ZL = 50 ) Parameter Symbol TestConditions MIN. TYP. MAX. Unit Circuit Current ICC No input signal 20.0 24.5 31.0 mA f = 0.95 GHz, Pin = 35.0 dBm 30.0 32.5 35.0 dBPower Gain GP f = 2.15 GHz, Pin = 35.0 dBm 30.5 33.5 36.0 f = 0.95 GHz, Pin = dBmSaturated Output Power PO (sat) f = 2.15 GHz, Pin = dBmGain 1 dB Compression Output Power P O (1 dB) f = 0.95 GHz 3.7 4.5 dBNoise Figure NF f = 2.15 GHz 3.7 4.5 Upper Limit Operating Frequency fu 3 dB down below flat gain at f = 0.95 GHz 2.8 GHz f = 0.95 GHz, Pin = 35.0 dBm 36.0 41.0 dBIsolation ISL f = 2.15 GHz, Pin = 35.0 dBm 36.0 45.0 f = 0.95 GHz, Pin = 35.0 dBm 7.0 8.5 dBInput Return Loss RLin f = 2.15 GHz, Pin = 35.0 dBm 8.0 11.0 f = 0.95 GHz, Pin = 35.0 dBm 7.0 10.5 dBOutput Return Loss RLout f = 2.15 GHz, Pin = 35.0 dBm 9.5 13.0 Gain Flatness GP f = 0.95 to 2.15 GHz 2.5 4.0 dB Data Sheet PU10500EJ01V0DS4 UPC3225TB
OTHER CHARACTERISTICS, FOR REFERENCE PURPOSES ONLY (TA = +25°C, VCC = Vout = 5.0 V, ZS = ZL = 50 ) Parameter Symbol Test Conditions Reference Value Unit f = 0.95 GHz 21.0 dBmOutput intercept point OIP3 f = 2.15 GHz 16.0 Data Sheet PU10500EJ01V0DS 5 UPC3225TB
The application circuits and their parameters are for reference only and are not intended for use in actual design-ins. COMPONENTS OF TEST CIRCUIT FOR MEASURING
ELECTRICAL CHARACTERISTICS
C3 1 000 pF Murata GMR39CH C4 1 000 pF Murata GMR36B L1 15nH Susumu TFL0816 INDUCTOR FOR THE OUTPUT PIN The internal output transistor of this IC consumes 24.5 mA, to output mediumpower.To supply current for output transistor, connect an inductor betweentheV CC pin (pin 3) and output pin (pin 1). Select inductance, as the value listed above. The inductor has both DC and AC effects. In terms of DC, the inductor biases the output transistor withminimum voltage drop to output enable high level. In terms of AC, the inductor makes output-port impedance higher to get enough gain. In this case, large inductance and Q is suitable. CAPACITORS FOR THE VCC, INPUT AND OUTPUT PINS Capacitors of 1 000 pF are recommendable asthebypass capacitor for the V CC pin. Capacitors of 330 pF for the input pin and 100 pF for the output pin are recommendable as the coupling capacitors. The bypass capacitor connected to the V CC pinisused to minimize ground impedance of V CC pin. So, stable bias can be supplied against VCC fluctuation. The coupling capacitors, connected to the input and output pins, are used to cut the DC and minimize RF serial impedance. Their capacitances are therefore selected as lower impedance against a 50 load. The capacitors thus perform as high pass filters, suppressing low frequencies to DC. Data Sheet PU10500EJ01V0DS6 UPC3225TB
ILLUSTRATION OF THE TEST CIRCUIT ASSEMBLED ON EVALUATION BOARD Notes 1. 30 0.4 mm double sided copper clad polyimide board. 2.Back side: GND pattern 3.Solder plated on pattern 4. : Through holes COMPONENT LIST Value C1 330pF C2 100pF C3, C4 1 000 pF L1 15nH 4 5 3 21 C1 C2 C4 L1 Data Sheet PU10500EJ01V0DS 7 UPC3225TB
TYPICAL CHARACTERISTICS (VCC = 5.0 V, TA = +25 C, unless otherwise specified) Supply Voltage VCC (V) 01 3 VCC = 5.0 V TA = C +25 C +85 C 2 4567 Operating Ambient Temperature T A ( 40 0 26.0 25.5 25.5 24.5 24.5 23.5 23.0 22.5 VCC = 5.0 V 20 20 608010040 0 1.0 2.0 4.0 26 3.0 Frequency f (GHz) 650 1.0 2.0 4.03.0 Frequency f (GHz) VCC = 4.5 V 5.0 V 5.5 V VCC = 4.5 V 5.0 V 5.5 V CIRCUIT CURRENT vs. SUPPLY VOLTAGE CIRCUIT CURRENT vs. OPERATING AMBIENT TEMPERATURE POWER GAIN vs. FREQUENCY ISOLATION vs. FREQUENCY 0 1.0 2.0 4.0 26 3.0 VCC = 5.0 V POWER GAIN vs. FREQUENCY Frequency f (GHz) TA = C +25 C +85 C 650 1.0 2.0 4.03.0 ISOLATION vs. FREQUENCY Frequency f (GHz) VCC = 5.0 V TA = C +25 C +85 C Remark The graphs indicate nominal characteristics. Data Sheet PU10500EJ01V0DS8 UPC3225TB
0 1.0 2.0 4.0 20 3.0 VCC = 5.0 V Frequency f (GHz) INPUT RETURN LOSS vs. FREQUENCY TA = C +25 C +85 C f = 950 MHz VCC = 4.5 V 5.0 V 5.5 V f = 1 500 MHz VCC = 4.5 V 5.0 V 5.5 V Input Power Pin (dBm) POWER GAIN vs. INPUT POWER Input Power Pin (dBm) POWER GAIN vs. INPUT POWER 240 1.0 2.0 4.03.0 OUTPUT RETURN LOSS vs. FREQUENCY Frequency f (GHz) VCC = 5.0 V TA = C +25 C +85 C 0 1.0 2.0 4.0 20 3.0 Frequency f (GHz) VCC = 4.5 V 5.0 V 5.5 V INPUT RETURN LOSS vs. FREQUENCY 240 1.0 2.0 4.03.0 Frequency f (GHz) VCC = 4.5 V 5.0 V 5.5 V OUTPUT RETURN LOSS vs. FREQUENCY Remark The graphs indicate nominal characteristics. Data Sheet PU10500EJ01V0DS 9 UPC3225TB
f = 2 150 MHz VCC = 4.5 V 5.0 V 5.5 V POWER GAIN vs. FREQUENCY Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) VCC = 5.0 V f = 950 MHz 1 500 MHz 2 150 MHz f = 950 MHz VCC = 4.5 V 5.0 V 5.5 V OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) f = 1 500 MHz VCC = 4.5 V 5.0 V 5.5 V OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) f = 950 MHz TA = C +25 C +85 C OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) f = 1 500 MHz TA = C +25 C +85 C Remark The graphs indicate nominal characteristics. Data Sheet PU10500EJ01V0DS10 UPC3225TB
TA = C +25 C +85 C f = 950/951 MHz Input Power Pin/tone (dBm) VCC = 4.5 V 5.0 V 5.5 V f = 950/951 MHz Input Power Pin/tone (dBm) OUTPUT POWER (2 TONES) vs. INPUT POWER OUTPUT POWER (2 TONES) vs. INPUT POWER f = 2 150 MHz VCC = 4.5 V5.0 V5.5 V OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) f = 2 150 MHz TA = C +25 C +85 C VCC = 5.0 V, f = 1 MHz f = 950/951 MHz : OIP3 = 21.0 dBm f = 1 500/1 501 MHz : OIP3 = 18.2 dBm f = 2 150/2 151 MHz : OIP3 = 16.0 dBm f = 950 MHz 1 500 MHz 2 150 MHz OUTPUT POWER (2 TONES) vs. INPUT POWER Input Power Pin/tone (dBm) Remark The graphs indicate nominal characteristics. Data Sheet PU10500EJ01V0DS 11 UPC3225TB
VCC = 4.5 V 5.0 V 5.5 V f = 1 500/1 501 MHz Input Power Pin/tone (dBm) VCC = 4.5 V 5.0 V 5.5 V f = 2 150/2 151 MHz Input Power Pin/tone (dBm) TA = C +25 C +85 C f = 1 500/1 501 MHz Input Power Pin/tone (dBm) TA = C +25 C +85 C f = 2 150/2 151 MHz Input Power Pin/tone (dBm) 5.0 4.8 4.6 4.4 4.2 4.0 3.8 3.6 3.4 3.2 3.00 1 000 3 0001 500 500 VCC = 4.5 V 5.0 V 5.5 V 2 5002 000 NOISE FIGURE vs. FREQUENCY Frequency f (GHz) OUTPUT POWER (2 TONES) vs. INPUT POWER OUTPUT POWER (2 TONES) vs. INPUT POWER OUTPUT POWER (2 TONES) vs. INPUT POWER OUTPUT POWER (2 TONES) vs. INPUT POWER Remark The graphs indicate nominal characteristics. Data Sheet PU10500EJ01V0DS12 UPC3225TB
S-PARAMETERS (TA = +25 C, VCC = Vout = 5.0 V) S11 FREQUENCY 1 : 950 MHz100.41 31.537 5.3124 pF 2 : 1 600 MHz58.686 47.725 2.0843 pF 3 : 2 150 MHz39.938 24.401 3.0338 pF START: 100.000 000 MHz STOP: 3 000.000 000 MHz S22 FREQUENCY 1 : 950 MHz60.637 32.730 5.4835 nH 2 : 1 600 MHz70.195 20.405 4.8754 pF 3 : 2 150 MHz44.370 14.407 5.1383 pF START: 100.000 000 MHz STOP: 3 000.000 000 MHz Data Sheet PU10500EJ01V0DS 13 UPC3225TB
6-PIN SUPER MINIMOLD (UNIT: mm) Data Sheet PU10500EJ01V0DS14 UPC3225TB
(1) Observe precautions for handling because of electro-static sensitive devices. (2) Form a ground pattern as widely 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 should be attached to the VCC pin. (4) The inductor (L) must be attached between VCC and output pins. The inductance value should be determined in accordance with desired frequency. (5) The DC cut capacitor must be attached to input and output pin. RECOMMENDED SOLDERING CONDITIONS This product should be soldered and mounted under the following recommended conditions. For soldering methods and conditions other than those recommended below, contact your nearby sales office. Soldering Method SolderingConditions ConditionSymbol Infrared Reflow Peak temperature (package surface temperature) : 260 C or below Time at peak temperature : 10 seconds or less Time at temperature of 220 C or higher : 60 seconds or less Preheating time at 120 to 180 C : 120 30 seconds Maximum number of reflow processes : 3 times Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below IR260 Wave Soldering Peak temperature (molten solder temperature) : 260 C or below Time at peak temperature : 10 seconds or less Preheating temperature (package surface temperature) : 120 C or below Maximum number of flow processes : 1 time Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below WS260 Partial Heating Peak temperature (terminal temperature) : 350 C or below Soldering time (per side of device) : 3 seconds or less Maximum chlorine content of rosin flux (% mass) : 0.2%(Wt.) or below HS350 Caution Do not use different soldering methods together (except for partial heating). Data Sheet PU10500EJ01V0DS 15 UPC3225TB
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