AP9211
Document overview
- Manufacturer or author: Diodes Incorporated
- PDF pages: 16
Technical content
Features
High Voltage CMOS Process, up to 30V (VDD to VM) Low Quiescent Current (+25°C ) In Normal Mode, 3.0µA (typ), 4.5µA (max) VDD = 3.5V In Power-Down Mode, 0.1µA (max) 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 Overcharge Detection Voltage: 8.0V (Fixed) Accuracy ±2V Overcharge Release Voltage: 7.3V (Fixed) Accuracy ±2V Built-in Fixed Detection Delay Time (+25°C ), Accuracy ±20% Power-Down Mode Selectable (Yes or No) 0V Battery Charge Selectable (Permission or Inhibition) Totally Lead-Free & Fully RoHS Compliant (Notes 1 & 2) Halogen and Antimony Free. “Green” Device (Note 3) For automotive applications requiring specific change control (i.e. parts qualified to AEC-Q100/101/104/200, PPAP capable, and manufactured in IATF 16949 certified facilities), please contact us or your local Diodes representative. https://www.diodes.com/quality/product-definitions/ Pin Assignments (Top View) VSS VDD VM NC EP U-DFN2030-6 (Type C)
Applications
Li+ rechargeable battery packs Notes: 1. No purposely added lead. Fully EU Directive 2002/95/EC (RoHS), 2011/65/EU (RoHS 2) & 2015/863/EU (RoHS 3) compliant . 2. See https://www.diodes.com/quality/lead-free/ for more information about Diodes Incorporated’s defi nitions of Halogen- and Antimony-free, "Green" and Lead-free. 3. Halogen- and Antimony-free "Green” products are defined as those which contain <900ppm bromine, <900ppm chlori ne (<1500ppm total Br + Cl) and <1000ppm antimony compounds. NOT RECOMMENDED FOR NEW DESIGN CONTACT US
Document number: DS37596 Rev. 6 - 3 2 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Typical Applications Circuit (Note 4) AP9211 U-DFN2030-6 (Type C) BAT 100n 2.7kΩ VDD VSS S1 S2 VM 330Ω to 470Ω Note: 4. R1 and C1 are used to stabilize the supply voltage of the AP9 211. 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 resistors 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 ratin g, therefore, R1 and R2 values should be selected appropriately for the actual application. If R2 is more than 4k Ω resistor, charge may not be off due to the voltage drop on R2. For power-down mode, w hen first connecting AP9 211 system board to the battery, it is necessary to use charger or to short P - to the battery negative polarity. Once the AP9211 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. It has not been confirmed whether the operation is normal or not in circuits other than the above example of connection. In addition, the example of connection shown above and the typical value do not exactly guarantee proper operation. Please perform the actual application to set the suitable value through your complete evaluation. Pin Descriptions Pin Number Pin Name Function 1 S1 Source pin of discharging MOSFET, connecting this pin to battery negative pole.
2 VSS Negative power supply pin
3 VDD Positive power supply pin, connecting this pin to battery positive pole through R1. 4 NC Not connected, leave this pin floating. 5 VM Charger negative input pin, short this pin to S2 pin through R2. 6 S2 Source pin of charging MOSFET, connecting this pin to charge negative input. EP D Thermal PAD is common drain of charge and discharge MOSFET, so in PCB layout, prefer to use large copper area to cover this pad for better thermal dissipation, then leave it open.
Document number: DS37596 Rev. 6 - 3 3 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Functional Block Diagram Logic Circuit Logic Circuit Delay Time Circuit OV Charge Option Level Shift RVMD RVMS S1 S2D2D1 G1 G2 VDD VSS S2S1 VM D EP
Document number: DS37596 Rev. 6 - 3 4 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Absolute Maximum Ratings (Notes 5 & 6) Symbol Parameter Rating Unit VDS Supply Voltage (Between VDD and VSS) -0.3 to 12 V VDM Charge Input Voltage (Between VDD and VM for Protection Chip) -0.3 to 24 V VDSS MOSFET Drain-to-Source Voltage 24 V VGSS MOSFET Gate-to-Source Voltage ±12 V ID Continuous Drain Current, VGS = 4.5V, TA = +25°C 9.0 A Continuous Drain Current, VGS = 4.5V, TA = +70°C 7.1 A PD Power Dissipation 1000 mW TJ Maximum Junction Temperature +150 °C TSTG Storage Temperature Range -65 to +150 °C — ESD (Machine Model) 300 V — ESD (Human Body Model) 3000 V Notes: 5. Stresses greater than those listed under Absolute Maximum Ratings can cause permanent dama ge to the device. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those indicated under Recommended Operating Conditions is not implied. Exposure to Absolute Maximum Ratings for extended periods can affect device reliability. 6. Ratings apply to ambient temperature at +25°C. The JEDEC High -K board design used to derive this data was a 2 inch es x 2 inch es multilayer board with 2oz internal power and ground planes and 2oz copper traces on the top and bottom of the board. Recommended Operating Conditions Symbol Parameter Min Max Unit VDS Supply Voltage (Between VDD and VSS) 1.5 5.5 V VDM Charge Input Voltage (Between VDD and VM) -0.3 5.5 V TA Operating Ambient Temperature -40 +85 °C
Document number: DS37596 Rev. 6 - 3 5 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Electrical Characteristics (TA = +25°C, VDD = 3.5V, VSS = 0V, R1 = 220Ω, R2 = 1.0kΩ, C1 = 100nF, unless otherwise specified.) Symbol Parameter Condition 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 (Power-Down Function) ICC Current Consumption During Operation VDD = 3.5V, VM = 0V — 3.0 4.5 μA IPDN Current Consumption During Power-Down Mode VDD = 1.8V, VM Pin Floating — — 0.1 μA ICC (Auto-Wake Up Function) ICC Current Consumption During Operation VDD = 3.5V, VM = 0V — 3 4.5 μA IAUTO Current Consumption During Auto-Wake Mode VDD = 1.8V, VM Pin Floating — 3.5 5.5 μA RVMD Resistance Between VM Pin and VDD Pin VDD = 1.8V VM = 0V 150 300 500 kΩ RVMS Resistance Between VM Pin and VDD Pin VDD = 3.5V VM = 1.0V 10 30 50 kΩ V0CHA 0V Battery Charge Starting Charge Voltage 0V battery charging “available” 1.2 — — V V0INH 0V Battery Charge Inhibition Battery Voltage 0V battery charging “unavailable” — — 0.45 V VOVCHG Overvoltage Charge Detection Voltage VDD = 3.5V 6.0 8.0 10.0 V VOVCHGR Overvoltage Charge Release Voltage VDD = 3.5V 5.3 7.3 9.3 V tCU Overcharge Detection Delay Time — tCU x 0.8 tCU tCU x 1.2 ms tCUR Overcharge Release Delay Time — tCUR x 0.8 tCUR tCUR x 1.2 ms tDL Overdischarge Detection Delay Time — tDL x 0.8 tDL tDL x 1.2 ms tDLR Overdischarge Release Delay Time — tDLR x 0.8 tDLR tDLR x 1.2 ms tDOC Discharge Overcurrent Detection Delay Time — tDOC x 0.8 tDOC tDOC x 1.2 ms tDOCR Discharge Overcurrent Release Delay Time — tDOCR x 0.8 tDOCR tDOCR x 1.2 ms tSHORT Load Short Detection Delay Time — tSHORT x 0.8 tSHORT tSHORT * 1.2 μs tCOC Charge Overcurrent Detection Delay Time — tCOC x 0.8 tCOC tCOC x 1.2 ms tCOCR Charge Overcurrent Release Delay Time — tCOCR x 0.8 tCOCR tCOCR x 1.2 ms
Document number: DS37596 Rev. 6 - 3 6 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211
Electrical Characteristics
(TA = -40°C to +85°C, VDD = 3.5V, VSS = 0V, R1 = 220Ω, R2 = 1.0kΩ, C1 = 100nF, unless otherwise specified.) Symbol Parameter Condition 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 - 0.080 VDL VDL + 0.080 V VDU Overdischarge Release Voltage VDU ≠ VDL VDU - 0.150 VDU VDU + 0.190 V VDU = VDL VDU - 0.080 VDU VDU + 0.080 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 (Power Down Function) ICC Current Consumption During Operation VDD = 3.5V, VM = 0V — 3.0 7.0 μA IPDN Current Consumption During Power-Down Mode VDD = 1.8V, VM Pin Floating — — 1.0 μA ICC (Auto-Wake Up Function) ICC Current Consumption During Operation VDD = 3.5V, VM = 0V — 3 4.5 μA IAUTO Current Consumption During Auto-Wake Mode VDD = 1.8V, VM Pin Floating — 6 8 μA RVMD Resistance Between VM Pin and VDD Pin VDD = 1.8V VM = 0V 100 300 650 kΩ RVMS Resistance Between VM Pin and VDD Pin VDD = 3.5V VM = 1.0V 5 30 65 kΩ V0CHA 0V Battery Charge Starting Charge Voltage 0V battery charging “available” 1.2 — — V V0INH 0V Battery Charge Inhibition Battery Voltage 0V battery charging “unavailable” — — 0.3 V VOVCHG Overvoltage Charge Detection Voltage VDD = 3.5V 5.5 8.0 10.5 V VOVCHGR Overvoltage Charge Release Voltage VDD = 3.5V 5.0 7.3 9.5 V tCU Overcharge Detection Delay Time — tCU x 0.6 tCU tCU x 1.4 ms tCUR Overcharge Release Delay Time — tCUR x 0.6 tCUR tCUR x 1.4 ms tDL Overdischarge Detection Delay Time — tDL x 0.6 tDL tDL x 1.4 ms tDLR Overdischarge Release Delay Time — tDLR x 0.6 tDLR tDLR x 1.4 ms tDOC Discharge Overcurrent Detection Delay Time — tDOC x 0.6 tDOC tDOC x 1.4 ms tDOCR Discharge Overcurrent Release Delay Time — tDOCR x 0.6 tDOCR tDOCR x 1.4 ms tSHORT Load Short Detection Delay Time — tSHORT x 0.6 tSHORT tSHORT x 1.4 μs tCOC Charge Overcurrent Detection Delay Time — tCOC x 0.6 tCOC tCOC x 1.4 ms tCOCR Charge Overcurrent Release Delay Time — tCOCR x 0.6 tCOCR tCOCR x 1.4 ms
Document number: DS37596 Rev. 6 - 3 7 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Electrical Characteristics (Notes 7 & 8) (TA = +25°C, VDD = 3.5V, VSS = 0V, R1 = 220Ω, R2 = 1.0kΩ, C1 = 100nF, unless otherwise specified.) Symbol Parameter Conditions Min Typ Max Unit IDSS Zero Gate Voltage Drain Current VDS = 20V, VGS = 0 — — 1.0 μA RSS(ON)1 Static Source-Source On-Resistance 1 VDD = 4.0V ID = 1.0A 20 27 30 mΩ RSS(ON)2 Static Source-Source On-Resistance 2 VDD = 3.9V ID = 1.0A 21 27 31 mΩ RSS(ON)3 Static Source-Source On-Resistance 3 VDD = 3.0V ID = 1.0A 21 28 33 mΩ VSD Diode Forward Voltage VGS = 0V IS = 1A — 0.75 1.0 V Notes: 7. In case of gate-source voltage of charging MOSFET is 0V. In case of gate-source voltage of discharging MOSFET is 0V. 8. These specifications are guaranteed by design - will not be tested in production.
Document number: DS37596 Rev. 6 - 3 8 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211
Application Information
- Normal Status The AP9211 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. When the battery voltage is between overdischarge detection voltage (V DL) and overcharge detection voltage (VCU) as well as when the VM pin voltage is between the charge overcurrent detection voltage (VCOC) and discharge overcurrent detection voltage (VDOC), the AP9211 turn s on discharging and charging MOSFE T. In these conditions, the battery can charge and discharge freely . Also, RVMD does not connect to VDD pin, and RVMS does not connect to VSS pin in this status. 2. Overcharge Status If the battery voltage is more than V CU during charging status for the overcharge detectio n delay time (t CU) or longer, the AP9211 turns off the charging MOSFET 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 AP9211 releases from overcharge status. When VM pin voltage is equal or more than VDOC and battery voltage falls below VCU, the AP9211 releases 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 AP9211 turns off the discharging MOSFET 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 power-down mode version, the AP9211 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 V DL, the AP9211 release s from overdischarge status. If VM pin voltage to VSS pin voltage is higher than typical -0.7V, the AP9211 release s from overdischarge status until the battery voltage rises over VDU. For auto-wake up version AP9211SA, the device recovers to normal status from overdischarge status if either of these two conditions are satisfied: If charger is connected: The AP9211SA overdischarge status is released in the same way as described above in AP9211S 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 battery is in discharge overcurrent status, if the voltage of the VM pin to VSS pin is equal or more than V DOC to VSHORT and detection lasts for the discharge overcurrent detection delay time (tDOC) or longer, the AP9211 turns off the discharging MOSFET to stop discharging. When the battery is in short-current status, if the voltage of the VM pin to VSS pin is equal to or more than V SHORT, and the detection lasts for the short current detection delay time or longer, the AP9211 turns off the discharge MOSFET to stop discharging. In discharge overcurrent or short -current status, RVMS is connected to V SS, 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 VM pin becomes almost equal to V SS (due to R VMS being connected) and then the AP9211 releases from discharge overcurrent or short current status. 5. Charge Overcurrent Status When the battery is in charge current status, if the voltage of the VM pin to VSS pin is equal to or less than V COC, and the detection continues for the charge overcurrent detection delay time (tCOC) or longer, the AP9211 turns off the charging MOSFET to stop charging.
Document number: DS37596 Rev. 6 - 3 9 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Application Information (continued) 6. 0V Battery Charging Function (Option) This function is available as an option and can be factory set internally. AP9 211 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 prevents the charger to recharge the battery whose voltage is 0V due to self-discharge. If a device without 0V charging function is required, contact Diodes sales team. 7. Overvoltage Charger Detection Circuit This function is used to monitor the charger vo ltage between the VDD pin and VM pin, and when this voltage exceeds overvoltage charger detection voltage (8.0V Typ.), the AP9211 turn s off charging MOSFET. When this voltage drops below overvoltage charger release voltage (7.3V Typ.), it then turns on charging MOSFET. There are no delay times set for detection and release. 8. Power-Down Mode or Auto-Wake-up Function (Option) In a device with power-down function, during p ower-down mode, the 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-wake-up 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: DS37596 Rev. 6 - 3 10 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Application Information (Timing Chart) 1. Overcharge and Overdischarge Detection VCU VCL VDL VDU VDD VSS VSS VDD VVM VDD VDOC VSS VP- VCOC VDD Discharge FET Charge FET VM 2 1 Red line is for auto wake-up mode version 1: tDL 2: tCU 3: tCUR 4: tDLR 2 1 S1 S1 S2S2 3 4 3 4 S1: Charger connection S2: Load connection P1: RVMD pull-up connection
Document number: DS37596 Rev. 6 - 3 11 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Application Information (Timing Chart) (continued) 2. Discharge Overcurrent Detection VCU VCL VDL VDU ON VSS OFF ON OFF VDD VSHORT VSS VDOC VDD Discharge FET Charge FET VM 1 2 S1 S2 1: tDOC 2: tSHORT 3: tDOCR S1: Connect over current load S2: Connect short current load P1: RVMS pull-down connection 3 3
Document number: DS37596 Rev. 6 - 3 12 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Application Information (Timing Chart) (continued) 3. Charge Overcurrent Detection VCU VCL VDL VDU VDD VSS VSS VDD VVM VDD VSS VP- VCOC VDD Discharge FET Charge FET VM 1: tCOC 2: tCOCR S1: Connect over current charger
Document number: DS37596 Rev. 6 - 3 13 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211
Ordering Information
Voltage & Delay Time Combination Code HAC: U-DFN2030-6 (Type C) Packing 7: Tape & Reel Power-Down Mode Blank: Yes A: No (Auto-wake-up) Package S: Standard RSS(ON) Part Number Package Code Package Packing Qty. Carrier AP9211XX-XX-HAC-7 HAC U-DFN2030-6 (Type C) 3000 7” Tape and Reel Voltage Combination (Note 9) 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 Overcurrent Detection Voltage VCOC Overvoltage Charger Detection Voltage VOVCHG Overvoltage Charger Release Voltage VOVCHGR Power-Down Function Overcharge Protection Mode 0V Battery Charge Function AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Permission AP9211XX- Release Prohibition AP9211XX- Release Prohibition AP9211XX- Release Prohibition AP9211XX- Release Prohibition AP9211XX- Release Permission Note: 9. If any other voltage combinations are needed, please contact the local sales office.
Document number: DS37596 Rev. 6 - 3 14 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Ordering Information (continued) AP9211 Delay Time Combination Part Number Overcharge Detection Delay Time tCU Overcharge Release Delay Time tCUR Overdischarge Detection Delay Time tDL Overdischarge Release Delay Time tDLR Discharge Overcurrent Detection Delay Time tDOC Discharge Overcurrent Release Delay Time tDOCR Charge Overcurrent Detection Delay Time tCOC Charge Overcurrent Release Delay Time tCOCR Load Short Detection Delay Time tSHORT Marking Information Y : Year : 0 to 9 (Top View) X : A to Z : Internal Code Y W X XX XX : Identification Code W : Week : A to Z : week 1 to 26; a to z : week 27 to 52; z represents week 52 and 53 Part Number Package Identification Code AP9211S-AA-HAC-7 U-DFN2030-6 (Type C) P5 AP9211S-AB-HAC-7 U-DFN2030-6 (Type C) P6 AP9211S-AC-HAC-7 U-DFN2030-6 (Type C) 6B AP9211S-AD-HAC-7 U-DFN2030-6 (Type C) 6C AP9211S-AE-HAC-7 U-DFN2030-6 (Type C) 6D AP9211S-AF-HAC-7 U-DFN2030-6 (Type C) 6E AP9211S-AG-HAC-7 U-DFN2030-6 (Type C) 6F AP9211S-AH-HAC-7 U-DFN2030-6 (Type C) 6G AP9211S-AI-HAC-7 U-DFN2030-6 (Type C) 6H AP9211S-AJ-HAC-7 U-DFN2030-6 (Type C) 6Y AP9211S-AK-HAC-7 U-DFN2030-6 (Type C) 6Z AP9211S-AL-HAC-7 U-DFN2030-6 (Type C) 5T AP9211S-AM-HAC-7 U-DFN2030-6 (Type C) 5U AP9211S-AN-HAC-7 U-DFN2030-6 (Type C) 5V AP9211S-CR-HAC-7 U-DFN2030-6 (Type C) 5W AP9211S-DD-HAC-7 U-DFN2030-6 (Type C) 5Z AP9211S-DH-HAC-7 U-DFN2030-6 (Type C) 8A AP9211S-DL-HAC-7 U-DFN2030-6 (Type C) 8B AP9211SA-AA-HAC-7 U-DFN2030-6 (Type C) M3 AP9211SA-AB-HAC-7 U-DFN2030-6 (Type C) M4 AP9211SA-AC-HAC-7 U-DFN2030-6 (Type C) M6 AP9211SA-AD-HAC-7 U-DFN2030-6 (Type C) M7 AP9211SA-AE-HAC-7 U-DFN2030-6 (Type C) M8 AP9211SA-AF-HAC-7 U-DFN2030-6 (Type C) N3 AP9211SA-AG-HAC-7 U-DFN2030-6 (Type C) N4 AP9211SA-AH-HAC-7 U-DFN2030-6 (Type C) N6 AP9211SA-AI-HAC-7 U-DFN2030-6 (Type C) N7 AP9211SA-AJ-HAC-7 U-DFN2030-6 (Type C) N8 AP9211SA-AK-HAC-7 U-DFN2030-6 (Type C) NE AP9211SA-AL-HAC-7 U-DFN2030-6 (Type C) 7X AP9211SA-AM-HAC-7 U-DFN2030-6 (Type C) P7 AP9211SA-AN-HAC-7 U-DFN2030-6 (Type C) P8 AP9211SA-CR-HAC-7 U-DFN2030-6 (Type C) 7Y AP9211SA-DD-HAC-7 U-DFN2030-6 (Type C) 7Z AP9211SA-DL-HAC-7 U-DFN2030-6 (Type C) 7V
Document number: DS37596 Rev. 6 - 3 15 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 Package Outline Dimensions Please see http://www.diodes.com/package-outlines.html for the latest version. U-DFN2030-6 (Type C) A Seating Plane D E bb2 z R0.150 L Pin1 ID e1 e1 U-DFN2030-6 (Type C) Dim Min Max Typ A 0.50 0.60 -- A1 0.00 0.05 0.02 A3 -- -- 0.127 b 0.25 0.35 0.30 b2 0.60 0.70 0.65 D 1.90 2.10 2.00 D2 1.60 1.80 1.70 E 2.90 3.10 3.00 E2 1.60 1.80 1.70 e -- -- 0.60 e1 -- -- 0.775 L 0.25 0.35 0.30 z 0.0500 Ref All Dimensions in mm Suggested Pad Layout Please see http://www.diodes.com/package-outlines.html for the latest version. U-DFN2030-6 (Type C) X1 X C1 C G Y Dimensions Value (in mm) C 0.600 C1 0.775 G 0.200 G1 0.200 X 0.400 X1 0.750 X2 1.800 Y 0.500 Y1 1.800
Document number: DS37596 Rev. 6 - 3 16 of 16 www.diodes.com April 2023 © 2023 Copyright Diodes Incorporated. All Rights Reserved. AP9211 IMPORTANT NOTICE 1. DIODES INCORPORATED (Diodes) AND ITS SUBSIDIARIES MAKE NO WARRANTY OF ANY KIND, EXPRESS OR IMPLIED, WITH REGARDS TO ANY INFORMATION CONTAINED IN THIS DOCUMENT, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR NON -INFRINGEMENT OF THIRD PARTY INTELLECTUAL PROPERTY RIGHTS (AND THEIR EQUIVALENTS UNDER THE LAWS OF ANY JURISDICTION). 2. The Information contained herein is for informational purpose only and is provided only to illustrate the operation of Diodes ’ products described herein and application examples. Diodes does not assume any liability arisin g out of the application or use of this document or any product described herein. This document is intended for skilled and technically trained engineering customers and users who d esign with Diodes’ products. Diodes’ products may be used to facilitate safety-related applications; however, in all instances customers and users are responsible for (a) selecting the appropriate Diodes products for their applications, (b) evaluating the suitability of Diodes’ products for their intended applications, (c) ensuring their applications, which incorporate Diodes’ products, comply the applicable legal and regulatory requirements as well as safety and functional-safety related standards, and (d) ensuring they design with appropriate safeguards (including testing, valid ation, quality control techniques, redundancy, malfunction prevention, and appropriate treatment for aging degradation) to minimize the risks associ ated with their applications. 3. Diodes assumes no liability for any application -related information, su pport, assistance or feedback that may be provided by Diodes from time to time. Any customer or user of this document or products described herein will assume all risks and liabilities associated with such use, and will hold Diodes and all companies whose products are represented herein or on Diodes’ websites, harmless against all damages and liabilities. 4. Products described herein may be covered by one or more United States, international or foreign patents and pending patent applications. Product names and markings noted herein may also be covered by one or more United States, international or foreign trademarks and trademark applications. Diodes does not convey any license under any of its intellectual property rights or the rights of any third parti es (including third parties whose products and services may be described in this document or on Diodes’ website) under this document. 5. Diodes’ products are provided subject to Diodes’ Standard Terms and Conditions of Sale (https://www.diodes.com/about/company/terms-and-conditions/terms-and-conditions-of-sales/) or other applicable terms. This document does not alter or expand the applicable warranti es provided by Diodes. Diodes does not warrant or accept any liability whatsoever in respect of any products purchased through unauthorized sales channel. 6. Diodes’ products and technology may not be used for or incorporated into any products or system s whose manufacture, use or sale is prohibited under any applicable laws and regulations. Should customers or users use Diodes’ products in contravention of any applicable laws or regulations, or for any unintended or unauthorized application, customers an d users will (a) be solely responsible for any damages, losses or penalties arising in connection therewith or as a result thereof, and (b) indemnify and hold Diodes and its representatives a nd agents harmless against any and all claims, damages, expenses, and attorney fees arising out of, directly or indirectly, any claim relating to any noncompliance with the applicable laws and regulations, as well as any unintended or unauthorized application. 7. While efforts have been made to ensure the information c ontained in this document is accurate, complete and current, it may contain technical inaccuracies, omissions and typographical errors. Diodes does not warrant that information contained in this docume nt is error-free and Diodes is under no obligation to u pdate or otherwise correct this information. Notwithstanding the foregoing, Diodes reserves the right to make modifications, enhancements, improvements, corrections or other changes without further notice to this document and any produ ct described herein. This document is written in English but may be translated into multiple languages for reference. Only the English version of this document is the final and determinative format released by Diodes. 8. Any unauthorized copying, modification, distribution, transmission, display or other use of this document (or any portion her eof) is prohibited. Diodes assumes no responsibility for any losses incurred by the customers or users or any third parties aris ing from any such unauthorized use. 9. This Notice may be periodically updated with the most recent version available at https://www.diodes.com/about/company/terms-and- conditions/important-notice The Diodes logo is a registered trademark of Diodes Incorporated in the United States and other countries. All other trademarks are the property of their respective owners. © 2023 Diodes Incorporated. All Rights Reserved. www.diodes.com