UPC3231GV CEL | Alldatasheet

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5 V AGC AMPLIFIER + VIDEO AMPLIFIER

Document No. PUXXXXEJW1V1DS (6th edition) Date Published March. 2007 NS CP(N) NEC Electronics Corporation 2007 Data sheet

DESCRIPTION

The PC3231GV is silicon monolithic IC designed for use as AGC amplifier for digital CATV, cable modem and digital terrestrial systems. This IC consists of gain control amplifier and video amplifier. The package is 8-pin SSOP (shrink small outline package) suitable for surface mount. This IC is manufactured using our 30 GHz fmax UHS0 (Ultra High Speed Process) silicon bipolar process. This process uses silicon nitride passivation film. This material can protect chip surface from external pollution and prevent corrosion/migration. Thus, this IC has excellent performance, uniformly and reliability.

FEATURES

Low distortion : IM3 = 53.5 dBc TYP. @ single-ended output, Vout = 105dB V 0.5 VP-P)/tone Low noise figure : NF = 5.0 dB TYP. @ Maximum Gain Wide AGC dynamic range : GCR = 61 dB TYP. @ input prescribe On-chip video amplifier : Vout = 1.0 VP-P TYP.@ single-ended output Supply Voltage : VCC = 5.0 V TYP. Packaged in 8-pin SSOP suitable for surface mounting.

APPLICATIONS

ORDERING INFORMATION (PLAN) mroF gniylppuSegakcaPrebmuN traP PC3231GV E1 8-pin plastic SSOP (4.45mm(175)) Embossed tape 8mm wide. Pin 1 indicates pull-out direction of tape. Qty 1kpcs/reel. Remark To order evaluation samples, please contact your local NEC sales office. Part number for sample order: PC3231GV Caution Observe precautions when handling because these devices are sensitive to electrostatic discharge. The information in this document is subject to change without notice. Before using this document, please confirm that this is the latest version. Not all devices/types available in every country. Please check with local NEC Electronics sales representative for availability and additional information.

+PC3231GV Data sheet INTERNAL BLOCK DIAGRAM AND PIN CONFIGURATION (Top View) PRODUCT LINE-UP OF 5V AGC AMPLIFIER Part Number ICC (mA) GMAX (dB) GMIN (dB) GCR (dB) NF (dB) IM3 (dBc) Package +PC3217GV 23 53 0 53 6.5 50 NOTE1 +PC3218GV 23 63 10 53 3.5 50 NOTE1 +PC3219GV 36.5 42.5 0 42.5 9.0 58 NOTE1 +PC3221GV 33 60 10 50 4.2 56 NOTE1 +PC3231GV 36 65 4 61 5.0 53.5 NOTE2 8-pin SSOP ( 4.45mm(175)) NOTE1 f1=44MHz,f2=45MHz,Vout=0.7Vp-p/tone,single-ended output NOTE2 f1=44MHz,f2=45MHz,Vout=0.5Vp-p/tone,single-ended output GND1 VAGC INPUT2 VCC 1 8 DriverAGC OUTPUT2 OUTPUT1INPUT1 7 AGC Control GND2

+PC3231GV Data sheet PIN EXPLANATIONS Pin No. Pin Name Applied Voltage (V) Pin Voltage (V) Note Function and application Internal Equivalent Circuit 1V CC 4.5 to 5.5 - Power supply pin. This pin should be externally equipped with bypass capacitor to minimize ground impedance, 2I N P UT1 - 1.32 3 INPUT2 - 1.32 Signal input pins to AGC amplifier. This pin should be coupled with capacitor for DC cut. 4V AGC 0 to VCC - Gain control pin. This pin’s bias govern the AGC output level. Minimum Gain at VAGC:0 to 0.1V Maximum Gain at VAGC:2.7 to 3.3V Recommended to use AGC voltage with externally resister (example:1k 5 GND2 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. 6 OUTUT2 - 1.91 7 OUTUT1 - 1.91 Signal output pins of video amplifier. This pin should be coupled with capacitor for DC cut.8 GND1 0 - Ground pin. This pin should be connected to system ground with minimum inductance. Ground pattern on the board should be formed as with as possible. All ground pins must be connected together with wide ground pattern to decrease impedance difference. AGC Control AGC Control AGC Amp AGC Amp Note Pin voltage is measured at VCC=5.0V

+PC3231GV Data sheet ABSOLUTE MAXIMUM RATINGS Parameter Symbol Test Conditions Rating Unit Supply Voltage V CC TA=+25$C 6.0 V Gain Control Voltage Range V AGC TA=+25$C 0 to V CC V Power Dissipation P D TA=+85$C Note 250 mW Storage Temperature T stg <55 to+150 $C Note Mounted on double-sided copper-clad 50 = 50 =1.6 mm epoxy glass PWB RECOMMENDED OPERATING RANGE Parameter Symbol Test Conditions MIN. TYP. MAX. Unit Supply Voltage V CC 4.5 5.0 5.5 V Operating Ambient Temperature T A Vcc = 4.5 to 5.5 V -40 +25 +85 $C Gain Control Voltage Range V AGC 0 < 3.3 V Operating Frequency Range f (BW) 30 90 MHz

+PC3231GV Data sheet

ELECTRICAL CHARACTERISTICS

(TA=+25$C, VCC = 5V, f = 45MHz, Zs = 501, ZL = 2501, single-ended output) Parameter Symbol Test Conditions MIN. TYP. MAX. Unit DC Characteristics Circuit Current Icc V CC=5V,No input signal Note 1 28 36 44 mA AGC Voltage High Level V AGC(H) @ Maximum gain Note 1 2.7 < 3.3 V AGC Voltage Low Level V AGC(L) @ Minimum gain Note 1 0 < 0.1 V RF Characteristics IF Input Frequency Range f (in) fc =-3dB @45MHz Note 1 30 < 90 MHz Maximum Voltage Gain G MAX VAGC=2.7V, Pin= <60dBm Note 1 62.5 65 67.5 dB Minimum Voltage Gain G MIN VAGC=0.1V, Pin= <30dBm Note 1 0 4 7 dB Gain Control Range (input prescribe) GCRin VAGC=0.1 to 2.7 V Note 1 55.5 61 - dB Gain Control Range (output prescribe) GCRout Vout = 1.0 Vp-p Note 1 45 55 - dB Output Voltage V out Pin =- 6 1 -6dBm Note 1 -1 . 0-V P-P Maximum Output Voltage V oclip VAGC= 3.0 V Note 1 2.0 3.3 - V P-P Noise Figure NF V AGC= 3.0 V Note 2 - 5.0 6.5 dB 3rd Order Inter-modulation Distortion IM3 f1 = 44 MHz, f2 =4 5M H z , Pin= <20 dBm/tone, Vout=105dB+V0.5VP-P )/tone Note 1 50 53.5 - dBc Input impedance Z in VAGC=0 V Note 3 - 1.35//6 - //pF Note 1. By measurement circuit 1 2. By measurement circuit 2 3. By measurement circuit 3

+PC3231GV Data sheet MEASUREMENT CIRCUIT 1 1uF 1uF 1uF 1uF Note 1uF 1uF 1uF 1uF Note Note Balun Transformer : TOKO 617DB-1674 B4F (Double balanced type) MEASUREMENT CIRCUIT 2 1uF 1uF 1uF 1uF Noise Source NF Meter Note 1uF 1uF 1uF 1uF Noise Source NF Meter Note Note Balun Transformer : TOKO 617DB-1674 B4F (Double balanced type)

+PC3231GV Data sheet MEASUREMENT CIRCUIT 3 1uF 1uF 1uF 1uF Network Analyzer 1uF 1uF 1uF 1uF Network Analyzer The application circuits and their parameters are for reference only and are not intended for use in actual design-ins.

+PC3231GV Data sheet MEASUREMENT CIRCUIT 4 PRESSURE IMPROVEMENT RECOMMENDATION CIRCUIT 100pF 100pF 100uF 100uF Note 100pF 100pF 100uF 100uF Note Note Balun Transformer : TOKO 617DB-1674 B4F (Double balanced type) MEASUREMENT CIRCUIT 5 PRESSURE IMPROVEMENT RECOMMENDATION CIRCUIT 100uF 100uF 100uF 100uF Noise Source NF Meter Note 100uF 100uF 100uF 100uF Noise Source NF Meter Note Note Balun Transformer : TOKO 617DB-1674 B4F (Double balanced type)

+PC3231GV Data sheet MEASUREMENT CIRCUIT 6 PRESSURE IMPROVEMENT RECOMMENDATION CIRCUIT 100uF 100uF 100uF 100uF Network Analyzer 100uF 100uF 100uF 100uF Network Analyzer The application circuits and their parameters are for reference only and are not intended for use in actual design-ins.

+PC3231GV Data sheet ILLUSTRATION OF THE TEST CIRCUIT ASSEMBLED ON EVALUATION BOARD (MEASUREMENT CIRCUIT 1) 1+F 0.1+F 0.1+F 1+F 1k1 0.1+F 0.1+F 2001 2001 Note +PC3231GV 1+F 0.1+F 0.1+F 1+F 1k1 0.1+F 0.1+F 2001 2001 Note +PC3231GV Note Balun Transformer Remarks 1. Back side: GND pattern 2. Au plated on pattern 3. : Through hole

+PC3231GV Data sheet TYPICAL CHARACTERISTICS (TA =+ 2 5$C, unless otherwise specified) 012 3 456 CIRCUIT CURRENT vs. SUPPLYV O L T A G E Supply Voltage Vcc( V ) Circuit Current (mA) No input signal TA= < 40$C TA= 25$C TA= 85$C 0123 456 CIRCUIT CURRENT vs. SUPPLY VOLTAGE Supply Voltage Vcc( V ) Circuit Current (mA) No input signal TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C -30 -20 -10 10 100 1000 VOLTAGE GAIN vs. FREQUENCY Voltage Gain( d B ) Frequency (MHz) VAGC=3.0V (Pin = - 60dBm) VAGC=1.0V (Pin = - 60dBm) VAGC= 0V (Pin = - 60dBm) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -30 -20 -10 10 100 1000 VOLTAGE GAIN vs. FREQUENCY VoltageG ain (dB) Frequency (MHz) VAGC=3.0V (Pin = - 60dBm) VAGC=1.0V (Pin = - 60dBm) VAGC= 0V (Pin = - 60dBm) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -40 -20 AGC PIN CURRENT vs. GAIN CONTROL VOLTAGE RANGE Gain Control Voltage Range V AGC(V) AGC Pin Current (+A) No input signal Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -40 -20 AGC PIN CURRENT vs. GAIN CONTROL VOLTAGE RANGE Gain Control Voltage Range V AGC(V) AGC Pin Current (+A) No input signal Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -40 -20 AGC PIN CURRENT vs. GAIN CONTROL VOLTAGE RANGE AGC Pin Current (+A) Gain Control Voltage Range V AGC(V) No input signal TA= < 40$C TA= 25$C TA= 85$C -40 -20 AGC PIN CURRENT vs. GAIN CONTROL VOLTAGE RANGE AGC Pin Current( +A) Gain Control Voltage Range V AGC(V) No input signal TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C VOLTAGE GAIN vs. GAIN CONTROL VOLTAGE RANGE Gain Control Voltage Range V AGC(V) VoltageG ain (dB) f = 45 MHz Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V VOLTAGE GAIN vs. GAIN CONTROL VOLTAGE RANGE Gain Control Voltage Range V AGC(V) Voltage Gain (dB) f = 45 MHz Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Gain Control Voltage Range V AGC(V) Voltage Gain (dB) Vcc =5 . 0 V f = 45 MHz TA= < 40$C TA= 25$C TA= 85$C Gain Control Voltage Range V AGC(V) Voltage Gain (dB) Vcc =5 . 0 V f = 45 MHz TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C Remark The graphs is indicate nominal characteristics

+PC3231GV Data sheet -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Vcc = 5.0V f=4 5 M H z VAGC =3 . 0 V OutputP ower Pout (501/2501)( dBm) TA= < 40$C TA= 25$C TA= 85$C -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Vcc = 5.0V f=4 5 M H z V AGC =3 . 0 V Output PowerP out (501/2501)( d B m ) TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) f=4 5 M H z VAGC =3 . 0 V Output Power Pout (501/2501)( d B m ) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) f=4 5 M H z VAGC =3 . 0 V Output Power Pout (501/2501)( d B m ) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Vcc = 5.0V f=4 5 M H z V AGC =1 . 0 V Output Power Pout (501/2501)( d B m ) TA= < 40$C TA= 25$C TA= 85$C -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Vcc = 5.0V f=4 5 M H z V AGC =1 . 0 V Output Power Pout (501/2501)( d B m ) TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER f=4 5 M H z VAGC =1 . 0 V Input Power Pin (dBm) Output Power Pout (501/2501)( d B m ) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER f=4 5 M H z VAGC =1 . 0 V Input Power Pin (dBm) Output Power Pout (501/2501)( d B m ) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V OUTPUT POWER vs. INPUT POWER f=4 5 M H z VAGC =0 V Input Power Pin (dBm) Output Power Pout (501/2501)( d Bm) -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V OUTPUT POWER vs. INPUT POWER f=4 5 M H z VAGC =0 V Input Power Pin (dBm) OutputP ower Pout (501/2501)( dBm) -20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Vcc = 5.0V f=4 5 M H z VAGC =0 V OutputP ower Pout (501/2501)( d Bm) TA= < 40$C TA= 25$C TA= 85$C-20 -15 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER vs. INPUT POWER Input Power Pin (dBm) Vcc = 5.0V f=4 5 M H z VAGC =0 V Output Power Pout (501/2501)( d B m ) TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C Remark The graphs is indicate nominal characteristics

+PC3231GV Data sheet Gain Control Voltage Range VAGC(V) NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) f=4 5 M H z Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Gain Control Voltage Range VAGC(V) NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) f=4 5 M H z Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Gain Control Voltage Range V AGC(V) NOISE FIGURE vs. GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) Vcc = 5.0V f=4 5 M H z TA= < 40$C TA= 25$C TA= 85$C Gain Control Voltage Range V AGC(V) N O I S EF I G U R Ev s . GAIN CONTROL VOLTAGE RANGE Noise Figure NF (dB) Vcc = 5.0V f=4 5 M H z TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C -40 -30 -20 -10 0 NOISE FIGURE vs. GAIN REDUCTION Noise Figure NF (dB) Gain Reduction (dB) f=4 5 M H z Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -40 -30 -20 -10 0 NOISE FIGURE vs. GAIN REDUCTION Noise Figure NF (dB) Gain Reduction (dB) f=4 5 M H z Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V -40 -30 -20 -10 0 NOISE FIGURE vs. GAIN REDUCTION Noise Figure NF (dB) Gain Reduction (dB) Vcc = 5.0V f=4 5 M H z TA= < 40$C TA= 25$C TA= 85$C -40 -30 -20 -10 0 NOISE FIGURE vs. GAIN REDUCTION Noise Figure NF (dB) Gain Reduction (dB) Vcc = 5.0V f=4 5 M H z TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C -80 -70 -60 -50 -40 -30 -20 -10 - 9 0- 8 0- 7 0- 6 0- 5 0- 4 0- 3 0- 2 0- 1 0 0 1 0 OUTPUT POWER,IM3 vs. INPUT POWER OutputP o w e r Pout (501/2501)( d B m) 3rd OrderI ntermodulation Distortion IM3 (dBm) VAGC =3 . 0 V freq1 = 44 MHz freq2 = 45MHz Input Power Pin (dBm) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5VPout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER,IM3 vs. INPUT POWER OutputP o wer Pout (501/2501)( dBm) 3rd Order Intermodulation Distortion IM3 (dBm) VAGC =3 . 0 V freq1 = 44 MHz freq2 = 45MHz Input Power Pin (dBm) Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5VPout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER,IM3 vs. INPUT POWER Output Power Pout (501/2501)( d Bm) 3rd Order IntermodulationD istortion IM3 (dBm) Vcc = 5.0V VAGC =3 . 0 V freq1 = 44 MHz freq2 = 45MHz Input Power Pin (dBm) TA= < 40$C TA= 25$C TA= 85$CPout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OUTPUT POWER,IM3 vs. INPUT POWER Output Power Pout (501/2501)( dBm) 3rd OrderI ntermodulation Distortion IM3 (dBm) Vcc = 5.0V VAGC =3 . 0 V freq1 = 44 MHz freq2 = 45MHz Input Power P in (dBm) TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$CPout IM3 Remark 0The graphs is indicate nominal characteristics

+PC3231GV Data sheet -80 -70 -60 -50 -40 -30 -20 -10 - 9 0- 8 0- 7 0- 6 0- 5 0- 4 0- 3 0 -20 -10 0 10 Output Power Pout (501/2501)( d B m ) 3rd Order Intermodulation Distortion IM 3 (dBm) VAGC =1 . 0 V freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) OUTPUT POWER,IM3 vs.I N P U TP O W E R Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -3 0 -20 -10 0 10 Output Power Pout (501/2501)( d B m ) 3rd Order Intermodulation Distortion IM 3 (dBm) VAGC =1 . 0 V freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 - 9 0- 8 0- 7 0- 6 0- 5 0- 4 0- 3 0- 2 0 -10 0 10 Output Power Pout (501/2501)( dBm) 3rdO rder Intermodulation Distortion IM 3 (dBm) Vcc = 5.0V VAGC =1 . 0 V freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER TA= < 40$C TA= 25$C TA= 85$C Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 Output Power Pout (501/2501)( dBm) 3rd OrderI n t ermodulation Distortion IM3 (dBm) Vcc = 5.0V VAGC =1 . 0 V freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 Output Power Pout (501/2501)( d B m ) 3rd Order Intermodulation Distortion IM3 (dBm) Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER Vcc = 5.0V VAGC =0 V freq1 = 44MHz freq2 = 45MHz TA= < 40$C TA= 25$C TA= 85$C Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 OutputP o wer Pout (501/2501)( d Bm) 3rdO r d erI ntermodulation Distortion IM3 (dBm) Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER Vcc = 5.0V VAGC =0 V freq1 = 44MHz freq2 = 45MHz TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 Output Power Pout (501/2501)( d B m ) 3rd Order Intermodulation Distortion IM3 (dBm) VAGC =0 V freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Pout IM3 -80 -70 -60 -50 -40 -30 -20 -10 -90 -80 -70 -60 -50 -40 -30 -20 -10 0 10 Output Power Pout (501/2501)( d B m ) 3rdO r d e rIntermodulation Distortion IM3 (dBm) VAGC =0 V freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) OUTPUT POWER,IM3 vs. INPUT POWER Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Pout IM3 Vcc = 5.0V Vou =0 . 5 V p - p / t o n e freq1 = 44MHz freq2 = 45MHz Input Power P in (dBm) 3rd Order IntermodulationD istortion IM3 (dBc) IM3 vs. INPUT POWER TA= < 40$C TA= 25$C TA= 85$C Vcc = 5.0V Vou =0 . 5 V p - p / t o n e freq1 = 44MHz freq2 = 45MHz Input Power P in (dBm) 3rdO rderI ntermodulation DistortionI M3 (dBc) IM3 vs. INPUT POWER TA= < 40$C TA= 25$C TA= 85$C TA= < 40$C TA= 25$C TA= 85$C Vou = 0.5Vp-p/tone freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) 3rd Order Intermodulation DistortionI M3 (dBc) IM3 vs. INPUT POWER Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vou = 0.5Vp-p/tone freq1 = 44MHz freq2 = 45MHz Input Power Pin (dBm) 3rdO r d e rI n termodulation Distortion IM3 (dBc) IM3 vs. INPUT POWER Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Vcc= 4.5V Vcc= 5.0V Vcc= 5.5V Remark The graphs is indicate nominal characteristics

+PC3231GV Data sheet S-PARAMETERS (TA =+2 5 $C,Vcc = 5V,VAGC=0V) S11 < FREQUENCY ¢1 : 45MHz 223.931< 506.441 6.98pF S22 < FREQUENCY ¢1 : 45MHz 49.681 5.391 19.86nH

+PC3231GV Data sheet +PC3231GV* PACKAGE DIMENSIONS 8 PIN PLASTIC SSOP (4.45mm(175)) (Unit : mm)

+PC3231GV Data sheet

+PC3231GV Data sheet The information in this document is current as of April, 2006. The information is subject to change without notice. For actual design-in, refer to the latest publications of NEC Electronics data sheets or data books, etc., for the most up-to-date specifications of NEC Electronics products. Not all products and/or types are available in every country. Please check with an NEC Electronics sales representative for availability and additional information. No part of this document may be copied or reproduced in any form or by any means without the prior written consent of NEC Electronics. NEC Electronics assumes no responsibility for any errors that may appear in this document. NEC Electronics does not assume any liability for infringement of patents, copyrights or other intellectual property rights of third parties by or arising from the use of NEC Electronics products listed in this document or any other liability arising from the use of such products. No license, express, implied or otherwise, is granted under any patents, copyrights or other intellectual property rights of NEC Electronics or others. Descriptions of circuits, software and other related information in this document are provided for illustrative purposes in semiconductor product operation and application examples. The incorporation of these circuits, software and information in the design of a customer's equipment shall be done under the full responsibility of the customer. NEC Electronics assumes no responsibility for any losses incurred by customers or third parties arising from the use of these circuits, software and information. While NEC Electronics endeavors to enhance the quality, reliability and safety of NEC Electronics products, customers agree and acknowledge that the possibility of defects thereof cannot be eliminated entirely. To minimize risks of damage to property or injury (including death) to persons arising from defects in NEC Electronics products, customers must incorporate sufficient safety measures in their design, such as redundancy, fire-containment and anti-failure features. NEC Electronics products are classified into the following three quality grades: "Standard", "Special" and "Specific". The "Specific" quality grade applies only to NEC Electronics products developed based on a customer designated "quality assurance program" for a specific application. The recommended applications of an NEC Electronics product depend on its quality grade, as indicated below. Customers must check the quality grade of each NEC Electronics product 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": Aircraft, aerospace equipment, submersible repeaters, nuclear reactor control systems, life support systems and medical equipment for life support, etc. The quality grade of NEC Electronics products is "Standard" unless otherwise expressly specified in NEC Electronics data sheets or data books, etc. If customers wish to use NEC Electronics products in applications not intended by NEC Electronics, they must contact an NEC Electronics sales representative in advance to determine NEC Electronics' willingness to support a given application. (Note) (1) "NEC Electronics" as used in this statement means NEC Electronics Corporation and also includes its majority-owned subsidiaries. (2) "NEC Electronics products" means any product developed or manufactured by or for NEC Electronics (as defined above). M8E 02. 11-1

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Santa Clara, CA 95054-1817 Telephone: (408) 919-2500 Facsimile: (408) 988-0279 Subject: Compliance with EU Directives CEL certifies, to its knowledge, that semiconductor and laser products detailed below are compliant with the requirements of European Union (EU) Directive 2002/95/EC Restriction on Use of Hazardous Substances in electrical and electronic equipment (RoHS) and the requirements of EU Directive 2003/11/EC Restriction on Penta and Octa BDE. CEL Pb-free products have the same base part number with a suffix added. The suffix –A indicates that the device is Pb-free. The –AZ suffix is used to designate devices containing Pb which are exempted from the requirement of RoHS directive (*). In all cases the devices have Pb-free terminals. All devices with these suffixes meet the requirements of the RoHS directive. This status is based on CEL’s understanding of the EU Directives and knowledge of the materials that go into its products as of the date of disclosure of this information. Restricted Substance per RoHS Concentration Limit per RoHS (values are not yet fixed) Concentration contained in CEL devices -A -AZLead (Pb) < 1000 PPM Not Detected (*) Mercury < 1000 PPM Not Detected Cadmium < 100 PPM Not Detected Hexavalent Chromium < 1000 PPM Not Detected PBB < 1000 PPM Not Detected PBDE < 1000 PPM Not Detected If you should have any additional questions regarding our devices and compliance to environmental standards, please do not hesitate to contact your local representative. Important Information and Disclaimer: Information provided by CEL on its website or in other communications concerting the substance content of its products represents knowledge and belief as of the date that it is provided. CEL bases its knowledge and belief on information provided by third parties and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. CEL has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. CEL and CEL suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall CEL’s liability arising out of such information exceed the total purchase price of the CEL part(s) at issue sol d by CEL to customer on an annual basis. See CEL Terms and Conditions for additional clarification of warranties and liability.