ST3S01PHD BATTERY CHARGE I.C.

Similar documents
Up to 3 W solar and USB battery charger for single-cell Li-Ion and Li-Po batteries based on the SPV1040, STBC21 and STC3100

STEVAL-ISV012V1. Up to 5 W solar battery charger for single-cell Li-ion and Li-Pol batteries based on the SPV1040 and L6924D.


LET9045C. RF power transistor from the LdmoST family of n-channel enhancement-mode lateral MOSFETs. Features. Description

M4TXX-BR12SH. TIMEKEEPER SNAPHAT (Battery & Crystal)

CE3211 Series. Standalone 1A Linear Lithium Battery Charger With Thermal Regulation INTRODUCTION: FEATURES: APPLICATIONS:

A RAPID CHARGER FOR BATTERIES WITH FUZZY LOGIC

MP V, 1A, Li-lon, Linear Battery Charger with 10mA High Voltage LDO

A4063. AiT Semiconductor Inc. APPLICATION ORDERING INFORMATION TYPICAL APPLICATION

ACT V/1.5A Backup Battery Pack Manager FEATURES APPLICATIONS GENERAL DESCRIPTION. Rev 0, 06-Nov-13 Product Brief

LM3621 Single Cell Lithium-Ion Battery Charger Controller

Standalone Linear Li-Ion Battery Charger with Thermal Regulation

UM0672 User manual. CRX14 and CR14 reference design PCB Gerber files. Introduction

SGM4056 High Input Voltage Charger

500mA Linear Li-Ion Battery Charger in SOT23

3A Switching Charger, 2.4A Boost and Fuel Gauge in One ESOP8 with Single Inductor

ACE4108 Max.2A Li-ion Switching Charger IC

1A Single Chip Li-Ion and Li-Polymer Charger

Type Number Symbol Value Units

Lithium Ion Battery Charger for Solar-Powered Systems

PT8A mA Li-ion/Polymer Battery Charger

FEATURES DESCRIPTION APPLICATIONS TYPICAL APPLICATION PIN OUT & MARKING. Max.2A Li-ion Switching Charger IC

BL8578 DESCRIPTION FEATURES APPLICATIONS PIN OUT & MARKING TYPICAL APPLICATION. Max.2A Li-ion Switching Charger IC

2.5A, 3MHz Switching Charger with Dynamic Power Path in 8-pin ESOP SYS 2.2K STAT. 2A Switching Charger with Minimum Component Count

HM5061 Max.1.6A Li-ion Switching Charger IC

Product Datasheet P MHz RF Powerharvester Receiver

CONSONANCE CN3051A/CN3052A. 500mA USB-Compatible Lithium Ion Battery Charger. General Description: Features: Pin Assignment.

AN1011 Application note

UNISONIC TECHNOLOGIES CO., LTD UC5301

DT V 800mA Standalone Linear Li-ion Battery Charger FEATURES GENERAL DESCRIPTION APPLICATIONS ORDER INFORMATION

XA4202. The XA4202 is available in the 8-lead SO Package. Charging Docks Handheld Instruments Portable Computers.

DT V 1A Standalone Linear Li-ion Battery Charger FEATURES GENERAL DESCRIPTION APPLICATIONS ORDER INFORMATION

SM6781BV Ni-MH/Ni-Cd Battery Charger IC

AT1084 5A Low Dropout Positive Voltage Regulator

LM3352 Regulated 200 ma Buck-Boost Switched Capacitor DC/DC Converter

Li-ion/Li Polymer Battery Charger. Features

2A Switch-Mode Li-Ion Battery Charger

+Denotes lead(pb)-free and RoHS compliant. JU1 JU4 4

The XA4203 is available in the SOP-8L package. Charging Docks Handheld Instruments Portable Computers

CE3151 Series. Standalone Linear Li-Ion Battery Charger with Thermal Regulation

800mA Lithium Ion Battery Linear Charger

300mA,Ultra-low noise, Small Package Ultra-Fast CMOS LDO Regulator

800mA Linear Li-Ion Battery Charger with Protection of Reverse Connection of Battery

A4004 BATTERY MANAGEMENT ONE CELL LITHIUM-ION/POLYMER BATTERY PROTECTION IC

COTAG GENERAL DESCRIPTION

CONSONANCE. 1A Nickel-Metal Hydride Battery Charger IC CN3085. General Description: Features: Pin Assignment. Applications:

VS6102 Standalone Linear Lithium Battery Charger

Rev1.0 UCT V 1A Standalone Linear Li-ion Battery Charger GENERAL DESCRIPTION FEATURES APPLICATIONS

800mA Linear Li-Ion Battery Charger

800mA Lithium Ion Battery Linear Charger

800mA Standalone Linear Li-Ion Battery Charger with Dual LED Display

1A Linear Li+ Battery Chargers with Integrated Pass FET and Thermal Regulation in 2mm x 2mm TDFN

PT1054 Lithium Ion Battery Linear Charger

1.2A Single-chip Li-ion and Li-POL Charge

Low Power, Low Dropout, 250mA, RF - Linear Regulators

STBC03. Li-Ion linear battery charger with LDO and load switches. Datasheet. Features. Applications. Description

Package: RN: SOT23-5 TRN: TSOT23-5 Features: P: Standard (default, lead free) C: Customized. 1uF

NC7SP17 TinyLogic ULP Single Buffer with Schmitt Trigger Input

ETA A, 3MHz Switching Charger with Dynamic Power Path Management

PRODUCT DATASHEET AAT3681

ME4054 Standalone Linear Li-Ion Battery Charger with Thermal Regulation in ThinSOT ME4054

Fully integrated constant current/constant voltage Li-ion battery charger

ETA mA Fully Integrated Linear Charger for 1 Cell Li-ion Battery APPLICATIONS ORDERING INFORMATION TYPICAL APPLICATION

Advanced Lithium-Ion Linear Battery Charger

NC7SV08 TinyLogic ULP-A 2-Input AND Gate

Linear Li+ Battery Charger with Integrated Pass FET, Thermal Regulation, and ACOK in 3mm x 3mm TDFN

HX6038 HX

LM317L 3-Terminal Adjustable Regulator

CE3152 Series. Standalone Linear LiFePO4 battery charger with Thermal Regulation INTRODUCTION: FEATURES: APPLICATIONS: PIN CONFIGURATION:

Lithium Battery Protection Integrated Circuit

DIO5538B 5~100mA,Single Li-ion Battery Charger

PART MAX1612EEE MAX1613EEE TOP VIEW BBATT LRI +3.3V +5V V CPU

GM1117 GM1117V1.01. Features. Description. Application. Typical Application Circuits 1A LOW DROPOUT PRECISION VOLTAGE REGULATOR

DS2714. Quad Loose Cell NiMH Charger

1A Single Chip Li-Ion and Li-Polymer Charger

China - Germany - Korea - Singapore - United States - smc-diodes.com

SC61A05. Standalone Linear Li-Lon Battery Charger. With Thermal Regulation. Features. Description. Applications

HM8202. The HM8202 is available in the SOP-8L package. Charging Docks Handheld Instruments Portable Computers

LM ma Low Dropout Regulator

Thick Film Chip Resistors

NC7SV126 TinyLogic ULP-A Buffer with Three-State Output

LM , LM mA and 500mA Voltage Regulators

500mA Standalone Linear Li-Ion Battery Charger. Features

TO-220. Symbol Description Max Units VIN Input Voltage 15 V IOUT DC Output Current PD/(VIN-VO) ma. -40 to 125 (* in case of IL

CHARGE SOURCE/LOAD GROUND

Techcode. Features. General Description. Applications. Package Types DATASHEET

Ag Features. Multi-Stage Charging. Solar Panel or DC Input. Maximum Power Point Tracking (MPPT) Very Low Power Consumption

DIO5518D 300mA,Single Li-ion Battery Charger

DS1321 Flexible Nonvolatile Controller with Lithium Battery Monitor

Silvertel. Ag Features. Multi-Stage Charging. Battery Reversal Protection. Reduced Power Consumption. Wide DC or AC Input Voltage Range

ADV AD A 150kHz 40V Buck DC/DC Converter With Constant Current Loop. General Description. Features. Applications

DATASHEET ISL88001, ISL88002, ISL Features. Applications. Pinouts. Ultra Low Power 3 Ld Voltage Supervisors in SC-70 and SOT-23 Packages

1.2A Single-chip Li-ion and Li-POL Charge

LM , LM mA and 500mA Voltage Regulators

CONSONANCE. 1A LiFePO4 Battery Charger CN3058E. Features: General Description: Applications: Pin Assignment

FG Series, 230V ac Toroidal Single Primary Transformers

1A is compatible with the USB interface, linear battery management chip

Blade Fuses - Illuminated Mini Blade

XB5358A. One Cell Lithium-ion/Polymer Battery Protection IC GENERAL DESCRIPTION FEATURES APPLICATIONS

1A Linear Li-Ion Battery Charger in SOP8/MSOP8

Transcription:

BATTERY CHARGE I.C. DEDICATED I.C. FOR 1 LI-ION CELL OR 3 NI-MH CELLS 5 DIFFERENT OPERATING MODES 150 ma PRECHARGE CURRENT VERY LOW DROP CHARGE SWITCH (130mV @ 800mA) VERY LOW DROP REVERSE SWITCH (130mV @ 800mA) 5.7V OVER BATTERY OVER VOLTAGE PROTECTION CHARGER DETECTION MODE (V CHARGE -V BATT )DETECTIONMODE DESCRIPTION This specification describes a dedicated I.C. which allows to charge 1 Lilon cell or 3 Nimh cells. The principle used to charge the batteries is the pulsed current, the monitoring is operated by the micro-controller of the application. This IC integrates one Power Switch and achieves the SCHEMATIC DIAGRAM SO-8 exposed pad charge batteries in two different modes charge or precharge. One of this operating mode (charge or precharge) can be selected in a static or pulsed way by one I/ O from a micro-controller. The IC can supply power to accessories controlled by this I.C. in Reverse mode. The I.C. is available in the smaller and surface mounted SO-8 (exposed pad version) package. September 2003 1/17

ABSOLUTE MAXIMUM RATINGS Symbol Parameter Value Unit V BATT Battery Voltage -0.3 to 6 V V CHARGE Charge Voltage (*) -12 to 16 V V FLAG (V CHARGE -V BATT ) Flag Control Voltage -0.3 to 12 V V CHARGER-OK Charger Flag Control Voltage -0.3 to 12 V V CMD-PWM PWM Command Voltage -0.3 to 5 V V CMD-MODE CMD Command Voltage -0.3 to 5 V V CMD-REVERSE Reverse Command Voltage -0.3 to 5 V I SWITCH Internal Switch T AMB = 85 C, R thj-amb = 40 C/W 2 A Continuous Max Current T AMB = 30 C, R thj-amb = 40 C/W 3 A Absolute Maximum Ratings are those values beyond which damage to the device may occur. Functional operation under these condition is not implied. (*) The I.C. is automatically turned OFF when V CHARGE reaches typically 14V (V CHARGE rising edge); typical hysteresis is 700mV (V CHARGE falling edge) THERMAL DATA ORDERING CODES Internal Switch Peak Current CONNECTION DIAGRAM (top view) T<1ms Duty Cycle < 1% R thj-amb = 40 C/W 8 A T stg Storage Range -55 to +125 C T J Operating Junction Range -40 to +125 C T AMB Operating Ambient Range (if an adequate -40 to +85 C heatsink is provided) Symbol Parameter SO-8 Unit R thj-case Thermal Resistance Junction-case 10 C/W TYPE SO-8 exposed pad SO-8 exposed pad (T&R) ST3S01PHD ST3S01PHD ST3S01PHD-TR 2/17

PIN DESCRIPTION Pin N Symbol Name and Function 1 V BATT BATTERY pin: input pin when reverse mode is selected; output pin when in charge or precharge mode 2 CMD-REVERSE Reverse Command pin: Enables the reverse mode when connected to a positive voltage higher than 1.2V. Logic pin internally pulled down. 3 CMD-PWM PWM Command pin: allows to control the precharge or charge switch in PWM mode (refer to the Table 1 for the different operating modes). Logic pin internally pulled down. 4 CMD-MODE Mode Command pin: allows to switch between precharge and charge mode (refer to OPERATING MODES Table). Logic pin internally pulled down. 5 GND GND Pin 6 CHARGER-OK CHARGER-OK output pin; open drain N-channel MOSFET that is in high impedance when the V CHARGE voltage drops below 2.5V and CMD-REVERSE is low. When the reverse function is activated, this open drain have the same information of the (V CHARGE -V BATT ) FLAG. 7 FLAG FLAG pin (V CHARGE -V BATT ): open drain N-channel MOSFET that sinks current when the V CHARGE voltage is higher than the V BATT. 8 V CHARGE CHARGER SUPPLY pin: input pin when charge or precharge mode is selected; output pin when in reverse mode. OPERATING MODE CMD-PWM CMD-MODE Operating Function Selected 0 0 PRECHARGE MODE (Default state) 0 1 CHARGE MODE 1 0 CHARGE and PRECHARGE switches are open 1 1 CHARGE and PRECHARGE switches are open 3/17

I.C. BLOCK DIAGRAM POSSIBLE OPERATING MODES Five different operating modes are allowed: charge, precharge, reverse, charge+reverse and precharge+reverse. These operating modes can be achieved by properly selection of the CMD-REVERSE CMD-PWM and CMD-MODE (See POSSIBLE OPERATING MODE Table). PRECHARGE MODE The PRECHARGE function is composed by a switch and a 100mA current source which fully works for V CHARGE higher than 2.5V. When the CMD-MODE and the CMD-PWM are not leaded the switch is ON, being the input states held by an internal pull down resistor. This is used when the battery is strongly discharged. In this case V BATT can be null (battery empty) and all the input pins are not held by any level (because the micro-controller is down), except the V CHARGE pin which is a main supply. The source of current supplies a constant current into the battery till its voltage level reaches the required level allowing to start the micro-controller (typically 3V). The current direction is from V CHARGE to V BATT.The reverse leakage current when the switch is ON must be null; this is obtained thanks to an internal circuitry that switch OFF the internal P-MOS when the V BATT is higher than V CHARGE,whateverthe status of the CMD-MODE. The precharge function is also used to adjust the mean current. When the 4/17

battery is fully charged the current into the battery has not to be more than C/25 (Nimh battery). In order to perform finely this, the CMD-PWM pin must be driven with PWM function (in the same time, the CMD-MODE must be kept low). The duty cycle allows to adjust the mean current needed. CHARGE MODE TheCMD-MODEpin,whenhigh(andCMD-PWM low), handles the switch in charge mode. This switch allows the battery charge with a strong current. The drop of this internal P-Channel MOS is very low (200mV @ 800mA) in order to optimize the efficiency of the charge. The switch is not internally protected against short circuit or overcurrent condition. When the switch is ON (CMD-MODE high and CMD-PWM low), the current direction into the chip is from V CHARGE to V BATT. The reverse current when the switch is ON must be null; this is obtained by mean of an internal circuitry that switch OFF the internal P-MOS when the V BATT is higher than V CHARGE, whatever the status of the CMD-MODE. When the CMD-MODE pin is low or in high impedance the switch is OFF, while it is ON when the signal on that pin is high. REVERSE MODE When the reverse function is selected by CDM-REVERSE pin, the switch allows to supply the accessories with a strong current. The drop of the internal P-Channel MOS is very low (200mV @ 800mA) and the switch properly work for V BATT higher than 2.5V. This allows to supply energy on the V CHARGE pin. When the switch is ON (CMD-REVERSE high) the current direction into thechipisfromv BATT to V CHARGE. The reverse current (from V CHARGE to V BATT ) when the switch is ON must be null; this is obtained by mean of an internal circuitry that switch OFF the internal P-MOS when the V CHARGE is higher than V BATT, whatever the status of the CMD-REVERSE. When the level of CMD-REVERSE pin is low or in high impedance, the switch is OFF, while it is ON when the signal on CMD-REVERSE pin is high. OVERVOLTAGE PROTECTION This function allows to held the switches OFF when the voltage level on V BATT is higher than a maximum voltage whatever are the values of CMD-PWM, CMD-MODE and CMD-REVERSE. This maximum voltage is shown in the electrical characteristic (typical threshold 5.7V). From the moment in which the o.v.protection is activated, it will be possible to turn ON again the switch only when the V CHARGE value decreases down to 2.5V typically, it doesn't matter which operation mode is selected. The protection works only when the battery is in charge or precharge mode, i.e. V CHARGE >V BATT. This represents, in fact, the typical application condition where the battery could increase its value, i.e. When charge or precharge mode are used. CHARGER DETECTION MODE This function allows to generate a digital signal (CHARGER-OK) to indicate if the V CHARGE voltage is higher than 2.5V and the reverse function is inactive. This functionality allows to determine if the charger is present or not; if the V CHARGE is lower than the 2.5V, the CHARGER-OK goes into high impedance (open drain). When the reverse function is active, this open drain have the V CHARGE -V BATT information. This circuitry is directly supplied from V CHARGE pin and works only for V CHARGE higher than 2.2V. V CHARGE -V BATT DETECTION MODE This function allows to generate a digital signal (V CHARGE -V BATT )flagtoindicateifthev CHARGE voltage is higher than V BATT ;ifthev CHARGE is lower than the V BATT, this open drain goes into high impedance state. This circuitry is directly supplied from V CHARGE pin and works only for V CHARGE higher than 2.2V. THERMAL PROTECTION An internal thermal shutdown circuitry will switch OFF the P_MOS, only in precharge or in charge mode, when the junction temperature reaches typically 180 C. This has been implemented in order to protect the device from overburning. 20 C of thermal hysteresis will avoid a thermal oscillation. This circuitry is supplied from V CHARGE and, so, acts only on the precharge and charge switches. ESD PROTECTION Both V CHARGE and V BATT pins are protected against electrostatic discharge up to ±4KV (HBM, MIL STD 833D. CHARGE VOLTAGE V CHARGE functional operating range is from 2.5V to 12V. At V CHARGE =14V typically the I.C. is automatically turned OFF and remains OFF up to 16V. A V CHARGE voltage higher than 16V can damage the IC. 5/17

POSSIBLE OPERATING MODE CMD-PWM CMD-MODE CMD-REVERSE Operating Function Selected 0 0 0 PRECHARGE 0 0 1 PRECHARGE + REVERSE 0 1 0 CHARGE 0 1 1 CHARGE + REVERSE 1 0 0 SWITCH OPEN 1 0 1 REVERSE 1 1 0 SWITCH OPEN 1 1 1 REVERSE ELECTRICAL CHARACTERISTICS OF REVERSE SWITCH (T A = -40 to 85 C, unless otherwise specified.) V BATT Reverse Block Operating Input Voltage V DROP Dropout Voltage V BATT =3V I REVERSE =800mA V CMD-REVERSE =1.9V, V CMD-PWM =1.9V 2.5 6 V 130 200 mv I LEAKAGE Reverse Leakage Current V BATT =0V V CHARGE =9V 0 1 µa (from V CHARGE to V BATT, tested on V BATT pin) V CMD-REVERSE =1.9V, V CMD-PWM =1.9V V IH CMD-REVERSE Logic High (Switch ON) V BATT =3V V CMD-PWM =1.9V I REVERSE =10mA 1.2 V V IL CMD-REVERSE Logic V BATT =3V I REVERSE =10mA 0.4 V Low (Switch OFF) V CMD-PWM =1.9V V TH CMD-REVERSE Logic Typical Threshold V BATT =3V V CMD-PWM =1.9V I REVERSE =10mA I CMD-REV CMD-REV Input Current V BATT =3V I REVERSE =10mA V CMD-REVERSE =1.9V, V CMD-PWM =1.9V V BATT =5V I REVERSE =10mA V CMD-REVERSE =1.9V, V CMD-PWM =1.9V 0.75 V 1 1.9 3 µa 10 µa t ON-OFF Response Time 100 µs 6/17

ELECTRICAL CHARACTERISTICS OF PRECHARGE SWITCH (T A = -40 to 85 C, unless otherwise specified.) V CHARGE Precharge Block 2.5 12 V Operating Input Voltage V DROP Dropout Voltage V CHARGE = 2.5V to 9V I PRECHARGE =100mA V CMD-REVERSE =0V or floating V CMD-PWM =0V or floating V CMD-MODE =0V or floating 0.13 1.2 V I PRECHARGE I LEAKAGE Precharge Current Limit (from V CHARGE to V BATT ) Precharge Leakage Current Limit (from V BATT to V CHARGE, tested on V CHARGE pin) V CHARGE = 2.5V to 9VV BATT =0V V CMD-REVERSE =0V or floating V CMD-PWM =0V or floating V CMD-MODE =0V or floating V CHARGE =0V V BATT = 5.5V V CMD-REVERSE =0V or floating V CMD-PWM =0V or floating V CMD-MODE =0V or floating 100 200 ma 1 µa F MODE PRECHARGE Switch Minimum Frequency V CHARGE = 2.5V to 9V V BATT =0VtoV CHARGE V CMD-REVERSE =0V or floating V CMD-PWM =0V or floating V CMD-MODE =0V to 1.9V at F MODE 100 Hz t ON-OFF Response Time 100 µs t OFF-ON Response Time 100 µs 7/17

ELECTRICAL CHARACTERISTICS OF CHARGE SWITCH (T A = -40 to 85 C, unless otherwise specified.) V CHARGE Charge Block Operating 2.5 12 V Input Voltage V DROP Dropout Voltage V CHARGE = 2.5V to 5V 0.13 0.2 V I CHARGE =800mA V CMD-REVERSE =0V V CMD-PWM =0V I LEAKAGE V IH V IL V TH I CMD-REV Precharge Leakage Current Limit (from V BATT to V CHARGE, tested on V CHARGE pin) CMD-MODE Logic High (CHARGE MODE ON) CMD-MODE Logic Low (CHARGE MODE OFF) CMD-MODE Logic Typical Threshold CMD-MODE Input Current V CHARGE =0V V BATT = 5.5V V CMD-REVERSE =0V V CMD-PWM =0V V CHARGE = 2.5V to 5V I CHARGE =10mA V CMD-REVERSE =0V V CMD-PWM =0V V CHARGE = 2.5V to 5V I CHARGE =10mA V CMD-REVERSE =0V V CMD-PWM =0V V CHARGE = 2.5V to 5V I CHARGE =10mA V CMD-REVERSE =0V V CMD-PWM =0V V CHARGE =3Vto5V I CHARGE =10mA V CMD-REVERSE =0V V CMD-PWM =0V 1 µa 1.2 V 0.4 V 0.75 V 1 30 µa F MODE PRECHARGE Switch V CHARGE = 2.5V to 5V 100 Hz Minimum Frequency I CHARGE =10mA V CMD-REVERSE =0V V CMD-PWM =0V V CMD-MODE =0V to 1.9V at F MODE t ON-OFF Response Time 100 µs ELECTRICAL CHARACTERISTICS OF CMD-PWM LOGIC PIN (T A =-40to85 C,V CHARGE = 2.5 to 9V unless otherwise specified.) V IH CMD-PWM Logic High I PRECHARGE =10mA 1.2 V (SWITCH OFF) V CMD-REVERSE =0V V CMD-MODE =0V V IL CMD-PWM Logic High I PRECHARGE =10mA 0.4 V (SWITCH ON) V CMD-REVERSE =0V V CMD-MODE =0V V TH CMD-PWM Logic Typical I PRECHARGE =10mA 0.75 V Threshold V CMD-REVERSE =0V V CMD-MODE =0V I CMD-PWM CMD-PWM Input Current I PRECHARGE =10mA 1 30 µa V CMD-REVERSE =0V V CMD-MODE =0V 8/17

ELECTRICAL CHARACTERISTICS OF CHARGER DETECTION BLOCK (T A = -40 to 85 C, V CHARGE =2.2to9V,V CMD-REVERSE = 0V or floating unless otherwise specified.) V CHARGE Charger Detection Block 2.2 V Operating Input Voltage V CHARGE-TH Low Voltage Threshold with falling edge 2.425 2.5 2.575 V V CHARGE-HYS Low Voltage Hysteresis with rising edge, T A =25 C 100 mv V CHARGER-OK CHARGER-OK Output V CHARGE =3V I CHARGER-OK =1mA 0.2 0.4 V Voltage Low V CHARGER-OK CHARGER-OK Output V FLAG = 0.2V I CHARGER-OK =1mA 0.2 0.4 V Voltage Low V CMD-REVERSE =1.9V I CHARGER-OK CHARGER-OK Output V CHARGE = 2.2V V CHARGER-OK =10V 0 1 µa Leakage Current I CHARGER-OK CHARGER-OK Output V FLAG = 0.2V V CHARGER-OK =10V 0 1 µa Leakage Current V CMD-REVERSE =1.9V ELECTRICAL CHARACTERISTICS OF FLAG DETECTION BLOCK (T A =-40 to 85 C, V CHARGE =2.2 to 9V unless otherwise specified.) V CHARGE FLAG Detection Block Operating Input Voltage 2.2 V V VCHARGE- FLAG (V CHARGE -V BATT ) V FLAG = 0.2V I FLAG =1mA 0.2 0.45 V VBATT Voltage Low I VCHARGE- FLAG (V CHARGE -V BATT ) V FLAG = 0.2V I FLAG =10mA 1 µa VBATT Leakage Current V VCHARGE- FLAG* (V CHARGE -V BATT ) I CHARGE =20mA I FLAG =1mA 0.2 0.45 V VBATT Voltage Low I VCHARGE- VBATT FLAG* (V CHARGE -V BATT ) Leakage Current V BATT =V CHARGE V FLAG = 10V 1 µa * Guaranteed by design ELECTRICAL CHARACTERISTICS OF OVERLOAD PROTECTION (T A =-40 to 85 C, V CHARGE >3V, V CHARGE >V BATT,V CMD-REVERSE =0V, V CMD-PWM =0V, V CMD-MODE =0V to 1.9V, unless otherwise specified.) V BATT Battery Input Threshold with rising edge 5.4 5.6 5.9 V t ON-OFF Response Time Switches ON to OFF, T A = 25 C 100 µs 9/17

I.C. CONSUMPTION (T A =-40 to 85 C, V CHARGE <V BATT, unless otherwise specified.) I BATT Current Consumption V CMD-PWM =1.9V µa from Battery Pin V CMD-MODE =0V or 1.9V V BATT = 3 to 5.25V V CHARGE = floating V CMD-REVERSE =0V 15 µa I CHARGE Current Consumption from the Charge Pin V BATT = 5.25V V CHARGE = floating V CMD-REVERSE =1.9V V CHARGE = 5.25V V BATT = floating V CMD-REVERSE =0V V CMD-PWM =1.9V V CMD-MODE =0V or 1.9V 140 300 µa 78 250 µa ESD PROTECTION ESD Electrostatic Discharge Immunity for V CHARGE and V BATT pins T A =25 C Human Body Method MIL STD 833D-3015.7 ±4 kv TYPICAL PERFORMANCE CHARACTERISTICS (unless otherwise specified T j =25 C) Figure 1 : Precharge Current Limit vs Figure 2 : Charge Drop Voltage vs 10/17

Figure 3 : Current Consumption vs Figure 6 : V BATT Leakage Current vs Figure 4 : Precharge Drop Voltage vs Figure 5 : Reverse Drop Voltage vs Figure 7 : Reverse Current Consumption vs Figure 8 : CMD-Mode Logic Threshold vs 11/17

Figure 9 : Command PWM Logic Threshold vs Figure 12 : CMD-REVERSE Input Current vs Figure 10 : CMD-MODE Input Current vs Figure 11 : Command Reverse Logic vs Figure 13 : CMD-PWM Input Current vs Figure 14 : CHARGER OK Voltage vs 12/17

Figure 15 : CHARGER OK Voltage vs Figure 18 : Minimum Battery Current vs Figure 16 : CHARGER OK Voltage Threshold vs Figure 17 : Flag Voltage Low vs Figure 19 : Minimum Battery Current vs Figure 20 : Overvoltage Protection vs 13/17

Figure 21 : Dynamic Precharge Mode 14/17

SO-8 (exposed pad) MECHANICAL DATA DIM. mm. inch MIN. TYP MAX. MIN. TYP. MAX. A 1.25 1.62 0.049 0.064 a1 0 0.10 0.000 0.004 a2 1.10 1.65 0.043 0.064 a3 0.65 0.85 0.025 0.033 b 0.33 0.51 0.013 0.020 b1 0.19 0.25 0.007 0.010 C 0.25 0.50 0.010 0.019 c1 45 (max.) D 4.80 5.00 0.189 0.196 E 5.80 6.20 0.228 0.244 e 1.27 0.050 e3 3.81 0.150 F 3.80 4.00 0.149 0.157 L 0.40 1.27 0.016 0.050 M 0.6 0.023 S 8 (max.) A 0,10 A B B 15/17

Tape & Reel SO-8 MECHANICAL DATA DIM. mm. inch MIN. TYP MAX. MIN. TYP. MAX. A 330 12.992 C 12.8 13.2 0.504 0.519 D 20.2 0.795 N 60 2.362 T 22.4 0.882 Ao 8.1 8.5 0.319 0.335 Bo 5.5 5.9 0.216 0.232 Ko 2.1 2.3 0.082 0.090 Po 3.9 4.1 0.153 0.161 P 7.9 8.1 0.311 0.319 16/17

Information furnished is believed to be accurate and reliable. However, STMicroelectronics assumes no responsibility for the consequences of use of such information nor for any infringement of patents or other rights of third parties which may result from its use. No license is granted by implication or otherwise under any patent or patent rights of STMicroelectronics. Specifications mentioned in this publication are subject to change without notice. This publication supersedes and replaces all information previously supplied. STMicroelectronics products are not authorized for use as critical components in life support devices or systems without express written approval of STMicroelectronics. The ST logo is a registered trademark of STMicroelectronics All other names are the property of their respective owners 2003 STMicroelectronics - All Rights Reserved STMicroelectronics GROUP OF COMPANIES Australia - Belgium - Brazil - Canada - China - Czech Republic - Finland - France - Germany - Hong Kong - India - Israel - Italy - Japan - Malaysia - Malta - Morocco - Singapore - Spain - Sweden - Switzerland - United Kingdom - United States. http://www.st.com 17/17