AP9101C DIODES | Alldatasheet

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Technical content

Features

 Low Current Consumption (+25°C)  Operation Mode: 3.0µA (Typ) VDD = 3.5V  Power-Down Mode: 0.01µA (Typ)  High-Accuracy Voltage Detection Circuit (+25°C)  Overcharge Detection Voltage: 3.5V to 4.5V (5mV Steps) Accuracy ±25mV  Overcharge Hysteresis Voltage Range: 0.1V to 0 .4V (50mV Steps) Accuracy ±50mV  Overdischarge Detection Voltage: 2.0V to 3.4V (10mV Steps) Accuracy ±35mV  Overdischarge Hysteresis Voltage Range: 0V to 0.7V (40mV Steps) Accuracy ±65mV  Discharge Overcurrent Detection Voltage: 0.05V to 0.32V (10mV Steps) Accuracy ±15mV  Short Current Detection Voltage: 0.45V to 0.7V (50mV Steps) Accuracy ±100mV  Charge Overcurrent Detection Voltage: -0.2V to -0.05V (10mV Steps) Accuracy ±15mV  Overcharger Detection Voltage: 8.0V (Fixed) Accuracy ±2V  Overcharger Release Voltage: 7.3V (Fixed) Accuracy ±2V  Built-In Fixed Detection Delay Time (+25°C): Accuracy ±20%  Power-Down Mode can be Selectable: Available/Unavailable  0V Battery Charge Function can be Selectable : Available/Unavailable  Overcharge Protection Mode can be Selectable: Release/Latch  High-Voltage CMOS Process : Up to 30V between V DD and V M Pins  Totally Lead-free & Fully RoHS Compliant (Note 1 & 2)  Halogen and Antimony Free. “Green” Device (Note 3) Pin Assignments Notes: 1. No purposely added lead. Fully EU Directive 2002/95/EC (RoHS) & 2011/65/EU (RoHS 2) compliant. 2. See http://www.diodes.com/quality/lead_free.html for more information about Diodes Incorporate d’s definitions of Halogen- and Antimony-free, "Green" and Lead-free. 3. Halogen- and Antimony-free "Green” products are defined as those which contain <9 00ppm bromine, <900ppm chlorine (<1500ppm total Br + Cl) and <1000ppm antimony compounds. VM VDD VSSDO CO 3 4 Pin 1 Mark NC SOT25 SOT26 (Top View) (Top View) 3 4 VM VDD VSS DO CO Pin 1 Mark

Document number: DS37771 Rev. 3 - 2 2 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Typical Applications Circuit (Note 4) AP9101C VDD VSS DO CO VM Battery 330Ω to 470Ω 100nF Q1 Q2 2.7KΩ 2(5) 3(6) 1(2) 4(1) 5(3) A(B) A for SOT25 B for SOT26 Note: 4. R1 and C1 are used to stabilize the supply voltage of the AP9101 C. The recommended range of R1 value is 330Ω to 470Ω and C1 value is 10nF to 1000nF, typical value is 100nF. R2 should be connected between P- to VM sense terminal to monitor the status of charger and the charge /discharge current. The R2 should be between 300Ω and 4kΩ, typical value is 2.7kΩ. R1 and R2 are also used as current limit resistor s if the battery or charger is connected reversely. Polarity reversing may cause the power consumption of R1 and R2 to go over their power dissipation rating, therefore R1 and R2 values should be selected appropriately for the actual application. If R2 is more than 4kΩ resistor, CO may not cut off Q2 due to the voltage drop on R2. For power down mode, when first connecting AP9101C system board to the battery, it is necessary to use charger or to short P- to the battery negative polarity. Once the AP9101C is activated, the charger or connection can be removed, otherwise the battery cannot discharge current through system board. The values selected should follow the recommended typical range mentioned above. Pin Descriptions Pin Number Pin Name Function SOT25 SOT26 1 2 VM Charger Negative Input Pin 2 5 VDD Positive Power Input Pin 3 6 VSS Negative Power Input Pin 4 1 DO FET Gate Control Pin for Discharge 5 3 CO FET Gate Control Pin for charge — 4 NC No Connected

Document number: DS37771 Rev. 3 - 2 3 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Functional Block Diagram Logic Circuit Logic Circuit Delay Time Circuit OV Charge Option Level Shift RVMD RVMS DO CO VM VSS VDD 1(2) 5(3) 4(1) 2(5) 3(6) A(B) B for SOT26 A for SOT25

Document number: DS37771 Rev. 3 - 2 4 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Absolute Maximum Ratings (Note 5) Symbol Parameter Rating Unit VDS Supply Voltage (between VDD and VSS) -0.3 to 12 V VDM Charger Input Voltage (between VDD and VM) -0.3 to 30 V VCO CO Pin Output Voltage VM-0.3 to VDD+0.3 V VDO DO Pin Output Voltage VSS-0.3 to VDD+0.3 V TOPR Operating Temperature Range -40 to +85 °C TJ Junction Temperature +150 °C TSTG Storage Temperature Range -65 to +150 °C TLEAD Lead Temperature (Soldering, 10sec) +300 °C PD Power Dissipation (+25°C) 250 mW — ESD (Machine Model) 200 V — ESD (Human Body Model) 2,000 V Note: 5. Stresses greater than those listed under “Absolute Maximum Ratings” may cause permanent damage to the device. These are stres s ratings only, and functional operation of the device at these or any other condit ions beyond those indicated under “Recommended Operating Conditions” is not implied. Exposure to “Absolute Maximum Ratings” for extended periods may affect device reliability. Recommended Operating Conditions Symbol Parameter Min Max Unit VDS Supply Voltage (between VDD and VSS) 1.5 5.5 V VDM Charger Input Voltage (between VDD and VM) -0.3 5.5 V TA Operating Ambient Temperature -40 +85 °C

Document number: DS37771 Rev. 3 - 2 5 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C

Electrical Characteristics

(TA = +25°C, VDD = 3.5V, VSS = 0V, R1 = 330Ω, R2 = 2.7kΩ, C1 = 100nF, unless otherwise specified.) Symbol Parameter Test Conditions Min Typ Max Unit VCU Overcharge Detection Voltage — VCU-0.025 VCU VCU+0.025 V VCL Overcharge Release Voltage VCL ≠ VCU VCL-0.050 VCL VCL+0.050 V VCL = VCU VCL-0.025 VCL VCL+0.025 V VDL Overdischarge Detection Voltage — VDL-0.035 VDL VDL+0.035 V VDU Overdischarge Release Voltage VDU ≠ VDL VDU-0.100 VDU VDU+0.100 V VDU = VDL VDU-0.035 VDU VDU+0.035 V VDOC Discharge Overcurrent Detection Voltage — VDOC-0.015 VDOC VDOC+0.015 V VSHORT Load Short-Circuiting Detection Voltage — VSHORT-0.10 VSHORT VSHORT+0.10 V VCOC Charge Overcurrent Detection Voltage — VCOC-0.015 VCOC VCOC+0.015 V ICC Current Consumption during Operation VDD = 3.5V, VM = 0V 1.5 3 4.5 µA ISTB Current Consumption at Power-Down VDD=1.8V, VM Pin Floating Power-Down Mode — — 0.1 µA Without Power-Down Mode (Auto-Wake-up) — — 5.5 RCOH CO Pin Resistance “H” VDD = 3.5V, VCO = 3.0V, VM = 0V 2 6 10 kΩ RCOL CO Pin Resistance “L” VDD = 4.5V, VCO = 0.5V, VM = 0V 2 4 10 kΩ RDOH DO Pin Resistance “H” VDD = 3.5V, VDO = 3.0V, VM = 0V 2 5 10 kΩ RDOL DO Pin Resistance “L” VDD = 1.8V, VDO = 0.5V, VM = 0V 2 5 10 kΩ RVMD Resistance between VM Pin and VDD Pin VDD = 1.8V, VM = 0V 150 300 500 kΩ RVMS Resistance between VM pin and VSS Pin VDD = 3.5V, VM = 1.0V 10 30 50 kΩ V0CHA 0V Battery Charge Starting Charger Voltage 0V Battery Charging “Available” 1.2 — — V V0INH 0V Battery Charge Inhibition Battery Voltage 0V Battery Charging “Unavailable” — — 0.45 V VOVCHG Overvoltage Charger Detection Voltage VDD = 3.5V 6.0 8.0 10.0 V VOVCHGR Overvoltage Charger Release Voltage VDD = 3.5V 5.3 7.3 9.3 V tCU Overcharge Detection Delay Time — tCU×0.8 tCU tCU×1.2 ms tDL Overdischarge Detection Delay Time — tDL×0.7 tDL tDL×1.3 ms tDOC Discharge Overcurrent Detection Delay Time — tDOC×0.8 tDOC tDOC×1.2 ms tSHORT Load Short-Circuiting Detection Delay Time — tSHORT×0.8 tSHORT tSHORT×1.2 µs tCOC Charge Overcurrent Detection Delay Time — tCOC×0.8 tCOC tCOC×1.2 ms

Document number: DS37771 Rev. 3 - 2 6 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Electrical Characteristics (Continued) (TA = -40°C to +85°C, VDD = 3.5V, VSS = 0V, R1 = 330Ω, R2 = 2.7kΩ, C1 = 100nF, unless otherwise specified.) Symbol Parameter Test Conditions Min Typ Max Unit VCU Overcharge Detection Voltage — VCU-0.060 VCU VCU+0.040 V VCL Overcharge Release Voltage VCL ≠ VCU VCL-0.080 VCL VCL+0.065 V VCL = VCU VCL-0.060 VCL VCL+0.040 V VDL Overdischarge Detection Voltage — VDL-0.110 VDL VDL+0.130 V VDU Overdischarge Release Voltage VDU ≠ VDL VDU-0.150 VDU VDU+0.190 V VDU = VDL VDU-0.110 VDU VDU+0.130 V VDOC Discharge Overcurrent Detection Voltage — VDOC-0.021 VDOC VDOC+0.024 V VSHORT Load Short-Circuiting Detection Voltage — VSHORT-0.34 VSHORT VSHORT+0.34 V VCOC Charge Overcurrent Detection Voltage — VCOC-0.040 VCOC VCOC+0.040 V ICC Current Consumption during Operation VDD = 3.5V, VM = 0V 1.0 3.0 7.0 µA ISTB Current Consumption at Power-Down VDD = 1.8V, VM Pin Floating Power-Down Mode — — 1.0 µA Without Power-Down Mode (Auto-Wake-up) — — RCOH CO Pin Resistance “H” VDD = 3.5V, VCO = 3.0V, VM = 0V 1.2 6 15 kΩ RCOL CO Pin Resistance “L” VDD = 4.5V, VCO = 0.5V, VM = 0V 1.2 4 15 kΩ RDOH DO Pin Resistance “H” VDD = 3.5V, VDO = 3.0V, VM = 0V 1.2 5 15 kΩ RDOL DO Pin Resistance “L” VDD = 1.8V, VDO = 0.5V, VM = 0V 1.2 5 15 kΩ RVMD Resistance between VM Pin and VDD Pin VDD = 1.8V, VM = 0V 100 300 650 kΩ RVMS Resistance between VM Pin and VSS Pin VDD = 3.5V, VM = 1.0V 5 30 65 kΩ V0CHA 0V Battery Charge Starting Charger Voltage 0V Battery Charging “Available” 1.2 — — V V0INH 0V Battery Charge Inhibition Battery Voltage 0V Battery Charging “Unavailable” — — 0.3 V VOVCHG Overvoltage Charger Detection Voltage VDD = 3.5V 5.5 8.0 10.5 V VOVCHGR Overvoltage Charger Release Voltage VDD = 3.5V 5.0 7.3 9.5 V tCU Overcharge Detection Delay Time — tCU×0.6 tCU tCU×1.4 ms tDL Overdischarge Detection Delay Time — tDL×0.55 tDL tDL×1.45 ms tDOC Discharge Overcurrent Detection Delay Time — tDOC×0.6 tDOC tDOC×1.4 ms tSHORT Load Short-Circuiting Detection Delay Time — tSHORT×0.6 tSHORT tSHORT×1.4 µs tCOC Charge Overcurrent Detection Delay Time — tCOC×0.6 tCOC tCOC×1.4 ms

Document number: DS37771 Rev. 3 - 2 7 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Operation Description Operation Mode 1. Normal Status The AP9101C monitors the battery voltage between the VDD Pin and VSS Pin as well as the voltage difference between the VM Pin and VSS Pin to control battery charging and discharging by CO and DO Pins. When the battery voltage is between overdischarge detection voltage (V DL) and overcharge detection voltage (V CU), as well as the V M Pin voltage is between the charge overcurrent detection voltage (V COC) and discharge overcurrent detection voltage (VDOC), the CO and DO Pin of the AP9101C will output high level and turn on charge and discharge MOSFETs. In these conditions, the battery can charge and discharge freely. Also, RVMD and RVMS do not connect to VDD and VSS Pins in this status. 2. Overcharge Status If the battery voltage is more than VCU during charging status for the overcharge detection delay time (tCU) or longer, the AP9101C turns off the charge MOSFET by setting low level to CO Pin to stop charging. RVMD and RVMS are not connected in overcharge status. When VM Pin voltage is lower than VDOC and battery voltage falls below VCL, the AP9101C will release from overcharge status. When VM Pin voltage is equal to or more than VDOC and battery voltage falls below VCU, the AP9101C will release from overcharge status. 3. Overdischarge Status If the battery voltage is less than VDL during discharging status for the overdischarge detection delay time (tDL) or longer, the AP9101C turns off the discharge MOSFET by setting low level to DO Pin to stop discharging. In overdischarge status, RVMD is connected to VDD and VM Pin voltage is pulled up to VDD by RVMD, but RVMS is not connected. For stand-by version, the AP9101C recovers normal status from overdischarge status only by charging the battery through the charger. When VM Pin voltage to VSS Pin voltage is less than typical -0.7V and the battery voltage rises over VDL, the AP9101C will release from overdischarge status. If VM Pin voltage to VSS Pin voltage is higher than typical -0.7V, the AP9101C will release from overdischarge status until the battery voltage rises over VDU. For auto-wake-up version AP9101CA, the device recovers to normal status from overdischarge status if either of these two conditions are satisfied. If charger is connected: the AP9101CA overdischarge status is released in the same way as described above in AP9101C Overdischarge Status section. If no charger is connected: 1) the battery voltage reaches the overdischarge release voltage (VDU) or higher; 2) maintains continuous time more than overdischarge release delay time tDLR. 4. Discharge Overcurrent and Short Current Status When the battery is in discharge overcurrent status, if the voltage of the V M Pin to V SS Pin is equal or mor e than V DOC to V SHORT. for the overdischarge current detection delay time (tDOC) or longer, the AP9101C turns off the discharge MOSFET by setting low level to DO Pin to stop discharging. When the battery is in short current status, if the voltage of the V M Pin to VSS Pin is equal to or more than V SHORT, for the short current detection delay time or longer, the AP9101C turns off the discharge MOSFET by setting low level to DO pin to stop discharging. In discharge overcurrent or short current status, RVMS is connected to VSS but RVMD is not connected. The voltage of VM Pin is almost equal to VDD as long as the load is connected. When the load is disconnected, the voltage of V M Pin will become almost equal to V SS (due to R VMS being connected) and then the AP9101C will release from discharge overcurrent or short current status. 5. Charge Overcurrent Status When the battery is in charge overcurrent status, if the voltage of the V M Pin to VSS Pin is equal to or less than V COC for the charge overcurrent detection delay time (tCOC) or longer, the AP9101C turns off the charge MOSFET by setting low level to CO Pin to stop charging.

Document number: DS37771 Rev. 3 - 2 8 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Operation Description (Continued) 6. 0V Battery Charging Function (Option) This function is available as an option and can be factory set internally. AP9101C has this function built in. 0V charging function permits charger to recharge the battery whose voltage is 0V due to self-discharge. If 0V charging function is not present, the device will prevent charger to recharge the battery whose voltage is 0V due to self-discharge. (If a device without 0V charging function is needed, please contact Diodes sales team) 7. Overvoltage Charger Detection Circuit This function is used to monitor the charger voltage between the V DD Pin and V M Pin, and when th is voltage exceeds overvoltage charger detection voltage (8.0V Typ ), the AP9101 C will set CO Pin low level to turn off charge MOSFET. When this voltage drops below overvoltage charger release voltage (7.3V Typ), CO Pin will be set to high level and turn on charge MOSFET. There are no delay times set for detection and release. 8. Power-Down Mode or Auto-Wake-Up Function Option In device with power-down function, during power-down mode, device enters the overdischarge status. The IC enters sleep mode and the current consumption becomes very low, typically 0.1µA. To release from power-down status to the normal status, charger connection is required. In device with auto-wakeup mode, the IC remains active in the overdischarge state. The IC is released into the normal state by the operation that increases the battery voltage more than overdischarge release voltage.

Document number: DS37771 Rev. 3 - 2 9 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Time Chart (1) Overcharge and Overdischarge Detection VCU VCL VDL VDU VDD VSS VSS VDD VM VDD VDOC VSS VP- VCOC VDD DO CO VM 2 1 Red line is for no shutdown mode version S1: Charger connection S2: Load connection 1: tDL 2: tCU 2 1 S1 S1 S2S2

Document number: DS37771 Rev. 3 - 2 10 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C VCU VCL VDL VDU VDD VSS VSS VDD VM VDD VSHORT VSS VDO C VDD DO CO VM 1 2 S1 S2 1: tDOC 2: tSHORT S1: Connect over current load S2: Connect short current load Time Chart (Continued) (2) Discharge Overcurrent Detection

Document number: DS37771 Rev. 3 - 2 11 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Time Chart (Cont.) (3) Charge Overcurrent Detection VCU VCL VDL VDU VDD VSS VSS VDD VM VDD VSS VP- VCOC VDD DO CO VM 1: tCOC S1: Connect over current charger

Document number: DS37771 Rev. 3 - 2 12 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C

Ordering Information

AP9101C X XX – XX XX XX PackingPackage TR : Tape & ReelK : SOT25 K6 : SOT26 Product Name Product Code G1 : GreenVoltage & Delay Time combination code RoHS/GreenPower Down Mode Blank: Yes A: No (Auto-wake-up) Voltage and Delay Time Combination Part Number Overcharge Detection Voltage VCU Overcharge Release Voltage VCL Over- discharge Detection Voltage VDL Over- discharge Release Voltage VDU Discharge Overcurrent Detection Voltage VDOC Load Short Detection Voltage VSHORT Charge Overurrent Detection Voltage VCOC Over Voltage Charger Detection Voltage VOVCHG Over Voltage Charger Release Voltage VOVCHGR Power-Down Function Overcharge Protection Mode Delay Time 0V Battery Charge Function AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission AP9101Cxxx- Release Option 1 Permission

Document number: DS37771 Rev. 3 - 2 13 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Ordering Information (Continued) Delay Time Option Overview Delay Time Option Overcharge Detection DelayTime (tCU) Overdischarge Detection Delay Time (tDL) Overdischarge Current Detection Delay Time (tDOC) Overcharge Current Detection Delay Time (tCOC) Load Short Circuiting Detection Delay Time (tSHORT) 1 1,000ms 115ms 10ms 10ms 320µs 2 125ms 32ms 8ms 8ms 160µs 3 1,000ms 20ms 12ms 10ms 320µs 4 1,000ms 42ms 10ms 10ms 320µs 5 1,000ms 115ms 10ms 10ms 160µs

Document number: DS37771 Rev. 3 - 2 14 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Marking Information (Note 6) Product Package Part Number Marking ID Packing Type Green Green AP9101C SOT25 AP9101CK-AATRG1 GQA Tape & Reel AP9101CK-ABTRG1 G6U Tape & Reel AP9101CK-ACTRG1 GQJ Tape & Reel AP9101CK-ADTRG1 GQK Tape & Reel AP9101CK-AETRG1 GQD Tape & Reel AP9101CK-AFTRG1 GQL Tape & Reel AP9101CK-AGTRG1 GQM Tape & Reel AP9101CK-AHTRG1 GQN Tape & Reel AP9101CK-AITRG1 GQP Tape & Reel AP9101CK-AJTRG1 GQQ Tape & Reel AP9101CK-AKTRG1 GQG Tape & Reel AP9101CK-ALTRG1 GQR Tape & Reel AP9101CK-AMTRG1 GQS Tape & Reel AP9101CK-ANTRG1 GQT Tape & Reel AP9101CK-AOTRG1 GRT Tape & Reel AP9101CAK-AATRG1 GRA Tape & Reel AP9101CAK-ABTRG1 GSC Tape & Reel AP9101CAK-ACTRG1 GRJ Tape & Reel AP9101CAK-ADTRG1 GRK Tape & Reel AP9101CAK-AETRG1 GRD Tape & Reel AP9101CAK-AFTRG1 GRL Tape & Reel AP9101CAK-AGTRG1 GRM Tape & Reel AP9101CAK-AHTRG1 GRN Tape & Reel AP9101CAK-AITRG1 GRP Tape & Reel AP9101CAK-AJTRG1 GRQ Tape & Reel AP9101CAK-AKTRG1 GRG Tape & Reel AP9101CAK-ALTRG1 GRR Tape & Reel AP9101CAK-AMTRG1 GRS Tape & Reel AP9101CAK-ANTRG1 GST Tape & Reel AP9101CAK-AOTRG1 GTT Tape & Reel

Document number: DS37771 Rev. 3 - 2 15 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Marking Information (Continued) AP9101C SOT26 AP9101CK6-AATRG1 GQB Tape & Reel AP9101CK6-ABTRG1 GQC Tape & Reel AP9101CK6-ACTRG1 GSJ Tape & Reel AP9101CK6-ADTRG1 GSK Tape & Reel AP9101CK6-AETRG1 GQE Tape & Reel AP9101CK6-AFTRG1 GSL Tape & Reel AP9101CK6-AGTRG1 GSM Tape & Reel AP9101CK6-AHTRG1 GSN Tape & Reel AP9101CK6-AITRG1 GSP Tape & Reel AP9101CK6-AJTRG1 GSQ Tape & Reel AP9101CK6-AKTRG1 GQH Tape & Reel AP9101CK6-ALTRG1 GSR Tape & Reel AP9101CK6-AMTRG1 GSS Tape & Reel AP9101CK6-ANTRG1 GQU Tape & Reel AP9101CK6-AOTRG1 GRU Tape & Reel AP9101CAK6-AATRG1 GRB Tape & Reel AP9101CAK6-ABTRG1 GRC Tape & Reel AP9101CAK6-ACTRG1 GTJ Tape & Reel AP9101CAK6-ADTRG1 GTK Tape & Reel AP9101CAK6-AETRG1 GRE Tape & Reel AP9101CAK6-AFTRG1 GTL Tape & Reel AP9101CAK6-AGTRG1 GTM Tape & Reel AP9101CAK6-AHTRG1 GTN Tape & Reel AP9101CAK6-AITRG1 GTP Tape & Reel AP9101CAK6-AJTRG1 GTQ Tape & Reel AP9101CAK6-AKTRG1 GRH Tape & Reel AP9101CAK6-ALTRG1 GTR Tape & Reel AP9101CAK6-AMTRG1 GTS Tape & Reel AP9101CAK6-ANTRG1 GSU Tape & Reel AP9101CAK6-AOTRG1 GTU Tape & Reel Note: 6. Current voltage versions are built by delay time option 1. If any other voltage versions or delay time option products are needed, please contact with the local sale’s office.

Document number: DS37771 Rev. 3 - 2 16 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C D e E1 E b A2 A1 Seating Plane L c a Package Outline Dimensions Please see AP02002 at http://www.diodes.com/datasheets/ap02002.pdf for the latest version. SOT25 SOT25 Dim Min Max Typ A 0.35 0.50 0.38 B 1.50 1.70 1.60 C 2.70 3.00 2.80 D - - 0.95 H 2.90 3.10 3.00 J 0.013 0.10 0.05 K 1.00 1.30 1.10 L 0.35 0.55 0.40 M 0.10 0.20 0.15 N 0.70 0.80 0.75  0° 8° - All Dimensions in mm SOT26 SOT26 Dim Min Max Typ A1 0.013 0.10 0.05 A2 1.00 1.30 1.10 A3 0.70 0.80 0.75 b 0.35 0.50 0.38 c 0.10 0.20 0.15 D 2.90 3.10 3.00 e - - 0.95 e1 - - 1.90 E 2.70 3.00 2.80 E1 1.50 1.70 1.60 L 0.35 0.55 0.40 a - - 8° a1 - - 7° All Dimensions in mm A M J LD B C H K N

Document number: DS37771 Rev. 3 - 2 17 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C Suggested Pad Layout Please see AP02001 at http://www.diodes.com/datasheets/ap02001.pdf for the latest version. SOT25 Dimensions Value (in mm) Z 3.20 G 1.60 X 0.55 Y 0.80 C1 2.40 C2 0.95 SOT26 Y1 G X Y C Dimensions Value (in mm) C 2.40 C1 0.95 G 1.60 X 0.55 Y 0.80 Y1 3.20 X Z Y C2C2 G

Document number: DS37771 Rev. 3 - 2 18 of 18 www.diodes.com December 2015 © Diodes Incorporated AP9101C IMPORTANT NOTICE DIODES INCORPORATED MAKES NO WARRANTY OF ANY KIND, EXPRESS OR IMP LIED, WITH REGARDS TO THIS DOCUMENT, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE (AND THEIR EQUIVALENTS UNDER THE LAWS OF ANY JURISDICTION). Diodes Incorporated and its subsidiaries reser ve the right to make modifications, enhancements, improvements, corrections or other changes without further notice to this document and any product described herein. Diodes Incorporated does not assume any liability a rising out of the application or use of this document or any product described herein; neither does Diodes Incorporated convey any license under its patent or trademark rights, nor the rights of others. Any Customer or user of this document or products described herein in such applic ations shall assume all risks of such use and will agree to hold Diodes Incorporated and all the companies whose products are represented on Diod es Incorporated website, harmless against all damages. Diodes Incorporated does not warrant or accept any liability whatsoever in respect of any products purchased through unauthorized sales channel. Should Customers purchase or use Diodes Incorporated products for any unintended or unauthorized application, Customers shall indemnify and hold Diodes Incorporated and its re presentatives harmless against all claims, damages, expenses, and attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized application. Products described herein may be cov ered by one or more United States, international or foreign patents pending. Product names and markings noted herein may also be covered by one or more United States, international or foreign trademarks. This document is written in English but may be tran slated into multiple languages for reference. Only the English version of this document is the final and determinative format released by Diodes Incorporated. LIFE SUPPORT Diodes Incorporated products are specifically not authorized for use as critical c omponents in life support devices or systems without the express written approval of the Chief Executive Officer of Diodes Incorporated. As used herein: A. Life support devices or systems are devices or systems which: 1. are intended to implant into the body, or 2. support or sustain life and whose failure to perform when properly used in accordance with instructions for use provided i n the labeling can be reasonably expected to result in significant injury to the user. B. A critical component is any component in a life support device or system whose failure to perform can be reasonably expected to cause the failure of the life support device or to affect its safety or effectiveness. Customers represent that they have all necessary expertise in the safety and regulatory ramifications of their life support devices or systems, and acknowledge and agree that they are solely responsible for all legal, regulatory and safety-related requirements concerning their products and any use of Diode s Incorporated products in such safety -critical, life support devices or systems, notwithstanding any devices - or systems -related information or support that may be provided by Diodes Incorporated. Further, Customers must fully indemnify Diodes Incorporat ed and its representatives against any damages arising out of the use of Diodes Incorporated products in such safety-critical, life support devices or systems. Copyright © 2015, Diodes Incorporated www.diodes.com