PQXXXGN1HZPH SHARP | Alldatasheet

Document overview

  • Manufacturer or author: Provided By ALLDATASHEET.COM(FREE DATASHEET DOWNLOAD SITE)
  • PDF pages: 7

Technical content

Notice The content of data sheet is subject to change without prior notice. In the absence of confirmation by device specification sheets, SHARP takes no responsibility for any defects that may occur in equipment using any SHARP devices shown in catalogs, data books, etc. Contact SHARP in order to obtain the latest device specification sheets before using any SHARP device. ■ Features Outline Dimensions Lead finish:Lead-free solder plating (Composition: Sn2Cu)

Applications

Product mass:(0.23g) (Unit : mm) Sheet No.: OP06070 Low Voltage Operation,Compact Surface Mount type Low Power-Loss Voltage Regulators 1.Low voltage output O=0.8 to 1.2V) 2.Low voltage operation: VIN(MIN)=1.7V 3.Output current : 1A 4.Built-in overcurrent and overheat protection functions 5.Conform to Flow Soldering SC-63 package 6.RoHS directive compliant Model Line-up Output Voltage (TYP.) Model No. Parameter Symbol Rating Unit 1.5 V VInput voltage Power dissipation Junction temperature 150 Operating temperature -40 to +85 Storage temperature -40 to +150 Soldering temperature 260(10s) 5.5 Absolute Maximum Ratings (Ta=25°C) Bias supply voltage Output current *1 All are open except GND and applicable terminals. *2 PD:With infinite heat sink *3 Overheat protection may operate at Tj:125°C to 150°C VIN VB IO PD Tj Topr Tstg Tsol NC GND Specific IC DC input (VIN) Bias input (VB) DC output (VO) Epoxy resin ( ) : Typical dimensions A (0.3) (1.7)(0.9) (0.3) 008GN1H 1 2 4 5 6.6MAX. 2.5MIN. 9.7MAX. 5.2±0.5 5.5±0.5 2.1±0.5 (0~0.25) 0.3+0.2 -0.1 4-(1.27) 0.7 MAX. 1.AV equipment 2.OA equipment 1.0V 0.8V 1.2V PQ008GN1HZPH PQ010GN1HZPH PQ012GN1HZPH H Lead finish identification mark

Sheet No.: OP06070

Electrical Characteristics

V dB Parameter Output voltage Load regulation Line regulation Ripple rejection Symbol Conditions MIN. MAX. Unit - 0.3 1.0 ±0.5 RR2 Input voltage Refer to the following table.1 -Refer to Fig.3 - 1.5 TYP. V PQxxxGN1HZPH Series (Unless otherwise specified,condition shall be VIN=1.8V,VB=3.3V,IO=0.5A,Ta=25°C) VIN VO RegL IO=5mA to 1.5A RegI VIN=1.7V to 5.5V,VB=2.35 to 7V , IO=5mA Temperature coefficient of output voltageTCVO Tj=0 to +125°C, IO=5mA 0.3 IB mABias inflow current - 60 Table.1 Output Voltage (Unless otherwise specified,condition shall be VIN=1.8V,VB=3.3V,IO=0.5A,VC=2.7V,Ta=25°C) 1.7 - 5.5 2.35 - 7Bias supply voltage VB - V 1.0 RR1 Refer to Fig.2 dB A V VIN 1μF 10μF VO IO RL A VB IB 1μF ei eo VIN 1μF 10μF IO RL VB 1μF 1.8V 3.3V Fig.1 Test Circuit Fig.2 Test Circuit for Ripple Rejection (1) f=120Hz(sine wave) ei(rms)=0.1V V IN=1.8V VB=3.3V IO=0.3A RR=20log(ei(rms)/eo(rms)) MIN. TYP. MAX. UnitConditionsSymbolModel No. PQ008GN1HZPH PQ010GN1HZPH PQ012GN1HZPH VO - 0.77 0.97 1.07 0.83 1.03 1.23 V 0.8 1.2

Sheet No.: OP06070 PQxxxGN1HZPH Series Fig.5 Overcurrent Protection Characteristics (PQ012GN1HZPH) Output voltage VO (V) Output current IO (A) eo VIN 1μF 10μF IO RL VB 1μF 1.8V 3.3V V~eb Fig.4 Power Dissipation vs. Ambient Temperature Fig.3 Test Circuit for Ripple Rejection (2) f=120Hz(sine wave) eb(rms)=0.1V V IN=1.8V VB=3.3V IO=0.3A RR=20log(eb(rms)/eo(rms)) Ambient temperature Ta (°C) Note) Oblique line portion:Overheat protection may operate in this area. Power dissipation PD (mW) 0.1 0.3 0.4 0.2 0.5 VB=3.3V CIN=CB=1μF CO=10μF Ta=Room temp. 3.5 4.0 0.6 0.8 0.9 0.7 1.0 1.1 1.3 1.2 VIN=1.7V VIN=2.5V VIN=5.5V VIN=3.3V 0.770 0.775 0.780 0.785 0.790 0.795 0.800 0.805 0.815 0.830 -50 -25 0 25 50 75 100 125 150 0.810 0.820 0.825 VIN=1.8V VB=3.3V IO=0.5A CIN=1μF CO=10μF Fig.6 Output Voltage vs. Ambient Temperature (PQ008GN1HZPH) Output voltage VO (V) Ambient temperature Ta (°C) 0.970 0.975 0.980 0.985 0.990 0.995 1.000 1.005 1.015 1.030 -50 -25 0 25 50 75 100 125 150 1.010 1.020 1.025 VIN=1.8V VB=3.3V IO=0A CIN=1μF CO=10μF Fig.7 Output Voltage vs. Ambient Temperature (PQ010GN1HZPH) Output voltage VO (V) Ambient temperature Ta (°C) -40 -20 0 25 50 8575 125100 150 PD:With infinite heat sink

Sheet No.: OP06070 PQxxxGN1HZPH Series Fig.8 Output Voltage vs. Ambient Temperature (PQ012GN1HZPH) Output voltage VO (V) Ambient temperature Ta (°C) 1.170 1.175 1.180 1.185 1.190 1.195 1.210 1.215 1.220 1.230 -50 -25 0 25 50 75 100 125 150 VIN=1.8V VB=3.3V IO=0A CIN=1μF CO=10μF 1.200 1.205 1.225 -50 -25 0 25 50 75 100 125 150 0.1 0.2 0.3 0.4 0.5 0.6 0.7 VIN=1.7~5.5V VB=2.35~7V IO=5mA CIN=1μF CO=10μF PQ008GN1HZPHPQ012GN1HZPH PQ010GN1HZPH Fig.9 Line Regulation vs. Ambient Temperature Ambient temperature Ta (°C) Line regulation RegI (%) -50 -25 0 25 50 75 100 125 150 0.75 0.8 0.85 0.9 0.95 1 VIN=1.8V VB=3.3V IO=0A CIN=1μF CO=10μF PQ008GN1HZPH PQ010GN1HZPH PQ012GN1HZPH Fig.10 Bias Inflow Current vs. Ambient Temperature Ambient temperature Ta (°C) Bias inflow current IB (mA) 0 1.0 2.0 3.0 4.0 0.2 0.4 0.6 0.8 1.0 IO=0A VB=3.3V CIN=1μF CO=10μF Ta=Room temp. Fig.11 Output Voltage vs. Input Voltage (PQ008GN1HZPH) Output voltage VO (V) Input voltage VIN (V) 0 1.0 2.0 3.0 4.0 0.2 0.4 0.6 0.8 1.0 1.1 IO=0A VB=3.3V CIN=1μF CO=10μF Ta=Room temp. Fig.12 Output Voltage vs. Input Voltage (PQ010GN1HZPH) Output voltage VO (V) Input voltage VIN (V) 0 1.0 2.0 3.0 4.0 0.2 0.4 0.6 0.8 1.0 1.2 IO=0A VB=3.3V CIN=1μF CO=10μF Ta=Room temp. 1.3 Fig.13 Output Voltage vs. Input Voltage (PQ012GN1HZPH) Output voltage VO (V) Input voltage VIN (V)

Sheet No.: OP06070 PQxxxGN1HZPH Series 0 1.0 2.0 3.0 4.0 0.2 0.4 0.6 0.8 1.0 IO=0A VIN=1.8V CIN=1μF CO=10μF Ta=Room temp. Bias supply voltage VB (V) Fig.14 Output Voltage vs. Bias Supply Voltage (PQ008GN1HZPH) Output voltage VO (V) 0 1.0 2.0 3.0 4.0 0.2 0.4 0.6 0.8 1.0 1.1 IO=0A VIN=1.8V CIN=1μF CO=10μF Ta=Room temp. Bias supply voltage VB (V) Fig.15 Output Voltage vs. Bias Supply Voltage (PQ010GN1HZPH) Output voltage VO (V) 0 1.0 2.0 3.0 4.0 0.2 0.4 0.6 0.8 1.0 1.2 IO=0A VIN=1.8V CIN=1μF CO=10μF Ta=Room temp. 1.3 Bias supply voltage VB (V) Fig.16 Output Voltage vs. Bias Supply Voltage (PQ012GN1HZPH) Output voltage VO (V) -2.0 -1.5 -1.0 -0.5 0.5 1.0 1.5 2.0

0 VIN

VIN=1.8V VB=3.3V IO=0A CIN=1μF CO=10μF Ta=Room temp. Input voltage / Bias supply voltage VIN/VB (V) Output voltage deviation ΔVO (mV) Fig.17 Output Voltage Deviation vs. Input Voltage / Bias Supply Voltage (PQ008GN1HZPH) -2.0 -1.5 -1.0 -0.5 0.5 1.0 1.5 2.0 VIN=1.8V VB=3.3V IO=0A CIN=1μF CO=10μF Ta=Room temp. Input voltage / Bias supply voltage VIN/VB (V) Output voltage deviation ΔVO (mV) Fig.18 Output Voltage Deviation vs. Input Voltage / Bias Supply Voltage (PQ010GN1HZPH) -2.0 -1.5 -1.0 -0.5 0.5 1.0 1.5 2.0 -2.5 -3.0 2.5 VIN VB VIN=1.8V VB=3.3V IO=0A CIN=1μF CO=10μF Ta=Room temp. Input voltage / Bias supply voltage VIN/VB (V) Output voltage deviation ΔVO (mV) Fig.19 Output Voltage Deviation vs. Input Voltage / Bias Supply Voltage (PQ012GN1HZPH)

Sheet No.: OP06070 PQxxxGN1HZPH Series Input voltage VIN (V) Input voltage VIN (V) Input current IIN (mA) Input current IIN (mA) Input current IIN (mA) Input voltage VIN (V) 0.5 1.0 1.5 2.0 2.5 IO=0A 0.5 1.0 1.5 2.0 2.5 IO=0A Input voltage VIN (V) Bias inflow current IB (mA) Input voltage VIN (V) Bias inflow current IB (mA) Fig.20 Input Current vs. Input Voltage (PQ008GN1HZPH) IO=0A VB=3.3V 0 0.5 2.0 3.0 4.0 1.0 1.5 2.5 3.5 Fig.21 Input Current vs. Input Voltage (PQ010GN1HZPH) IO=0A VB=3.3V Fig.22 Input Current vs. Input Voltage (PQ012GN1HZPH) IO=0A VB=3.3V Fig.23 Bias Inflow Current vs. Input Voltage (PQ008GN1HZPH) VB=3.3V Fig.24 Bias Inflow Current vs. Input Voltage (PQ010GN1HZPH) VB=3.3V 0.5 1.0 1.5 2.0 2.5 IO=0A Fig.25 Bias Inflow Current vs. Input Voltage (PQ012GN1HZPH) Input voltage VIN (V) Bias inflow current IB (mA) VB=3.3V

Sheet No.: OP06070 PQxxxGN1HZPH Series Bias supply voltage VB (V) 0.5 1.0 1.5 2.0 2.5 IO=0AIB 0.5 1.0 1.5 2.0 2.5 IO=0AIB 0.5 1.0 1.5 2.0 IO=0AIB Bias supply voltage VB (V) Bias supply voltage VB (V) Fig.26 Bias Inflow Current vs. Bias Supply Voltage (PQ008GN1HZPH) VIN=1.8V Fig.27 Bias Inflow Current vs. Bias Supply Voltage (PQ010GN1HZPH) VIN=1.8V Fig.28 Bias Inflow Current vs. Bias Supply Voltage (PQ012GN1HZPH) VIN=1.8V Bias inflow current IB (mA) Bias inflow current IB (mA) Bias inflow current IB (mA) Fig.29 Power Dissipation vs. Ambient Temperature (Typical Value) Ambient temperature Ta (°C) Power dissipation PD (W) Mounting PCB PCB Cu Material Size Cu thickness : Glass-cloth epoxy resin : 50×50×1.6mm : 35μm 0.5 1.5 -40 -20 0 20 40 60 80 100 120 2.0 Cu area 740mm2 Cu area 180mm2 Cu area 100mm2 Cu area 70mm2 Cu area 36mm2