Power Management AT73C211

Similar documents
ATA6140. Flasher Application Module. Application Note. ATA Flasher Application Module. 1. Description

Current Monitor IC U4793B

Flasher, 30 mω Shunt, Pilot Lamp to GND or V Batt U2043B

Flasher, 18-mΩ Shunt, Frequency Doubling Disabling U6433B

Flasher IC with U643B

Zero-voltage Switch with Adjustable Ramp T2117

PWM Power Control IC with Interference Suppression U6083B

Digital Window Watchdog Timer U5021M

300-MHz Quadrature Modulator U2793B

Zero-voltage Switch with Adjustable Ramp T2117

Low-power Flasher IC with 18-m Shunt U6432B

Rear Window Heating Timer/ Long-term Timer U6046B

Low-power Audio Amplifier for Telephone Applications U4083B

Power Management for Mobiles (PM) AT73C202 Power and Battery Management Unit for Cellular Phone. Preliminary. Features.

Power Management for Mobiles (PM) AT73C204. Features. Description

IR Receiver for Data Communication U2538B

Read/Write Crypto Transponder for Short Cycle Time TK5561A-PP

Two-relay Flasher ATA6140

Application Note. 8-Bit Microcontrollers. AVR433: Power Factor Corrector (PFC) with AT90PWM2 Re-triggable High Speed PSC

Low-cost Phase-control IC with Soft Start U2008B

Transceiver Base Station Board ATAB542x-x-B. Application Note. Bill of Materials and Implementation of the Transceiver Base Station Board ATAB542x-x-B

AVR443: Sensor-based control of three phase Brushless DC motor. 8-bit Microcontrollers. Application Note. Features. 1 Introduction

8-bit Microcontroller. Application Note. AVR400: Low Cost A/D Converter

1000-MHz Quadrature Modulator U2790B. Features. Benefits. Description. Electrostatic sensitive device. Observe precautions for handling.

Transceiver Base Station Board ATAB5823-x-B/ ATAB5824-x-B. Application Note

MHz High Linearity SiGe Active Receive Mixer T0782. Preliminary

8-bit RISC Microcontroller. Application Note. AVR182: Zero Cross Detector

Read-only Transponder TK5530

1-Megabit (64K x 16) OTP EPROM AT27C1024

2-Megabit (128K x 16) OTP EPROM AT27C2048

UHF ASK Transmitter U2745B

1-Megabit (128K x 8) OTP EPROM AT27C010

Application Note. How to Connect C51 Microcontroller to ATR Microcontrollers

Phase-control IC with Current Feedback and. Overload. Protection U2010B

Standard Read/Write ID Transponder with Anticollision TK5551

AVR443: Sensorbased control of three phase Brushless DC motor. 8-bit Microcontrollers. Application Note. Features. 1 Introduction

Read/Write Base Station U2270B

Special Fail-safe IC U6808B

2.4-GHz SiGe Power Amplifier for b/g WLAN Systems T7031. Preliminary

8-Megabit (1M x 8) OTP EPROM AT27C080. Features. Description. Pin Configurations

Application Note. 8-bit Microcontrollers. AVR092: Replacing ATtiny11/12 by ATtiny13. Features. Introduction

UHF ASK/FSK Transmitter U2741B

Multifunction Timer IC U2102B

High-speed CAN Transceiver ATA6660

Programmable SLI AT94K AT94S. Application Note. DTMF Generator

Phase Control IC for Tacho Applications U209B

128-bit Read-only IDIC for RF Identification. e5530

8-bit. Application Note. Microcontrollers. AVR077: Opto Isolated Emulation for the DebugWIRE

AVR122: Calibration of the AVR's internal temperature reference. 8-bit Microcontrollers. Application Note. Features.

AVR1302: Using the XMEGA Analog Comparator. 8-bit Microcontrollers. Application Note. Features. 1 Introduction

UHF ASK/FSK. Transmitter T5754

3-wire Serial EEPROM AT93C86. Features. Description. Pin Configurations 8-lead PDIP. 16K (2048 x 8 or 1024 x 16)

Flasher IC with 18-mΩ Shunt U6043B

3-wire Serial EEPROM AT93C86. Features. Description. Pin Configurations. 16K (2048 x 8 or 1024 x 16)

AVR055: Using a 32kHz XTAL for run-time calibration of the internal RC. 8-bit Microcontrollers. Application Note. Features.

8-bit Microcontroller. Application Note. AVR084: Replacing ATmega323 by ATmega32. Features. Introduction. ATmega323 Errata Corrected in ATmega32

Highperformance EE PLD ATF16LV8C

2-megabit (256K x 8) Unregulated Battery-Voltage High-speed OTP EPROM AT27BV020

Atmel U6032B. Automotive Toggle Switch IC DATASHEET. Features. Description

Atmel ATA6629/ Atmel ATA6631 Development Board V2.2. Application Note. Atmel ATA6629/ATA6631 Development Board V

Time-code Receiver T4227

4-Megabit (256K x 16) OTP EPROM AT27C4096

UHF ASK/FSK Receiver ATA5721 ATA5722. Features

Read/Write Base Station U2270B

1-Megabit (64K x 16) OTP EPROM AT27C1024

ATAVRAUTO User Guide

AVR1311: Using the XMEGA Timer/Counter Extensions. 8-bit Microcontrollers. Application Note. Features. 1 Introduction

Low-noise, High-dynamicrange. Antenna Amplifier IC ATR4251. Preliminary

8-bit RISC Microcontroller. Application Note. AVR314: DTMF Generator

L-band Down-converter for DAB Receivers U2730B-N. Preliminary

Very Highresolution. Linear CCD Image Sensor (12000 Pixels) TH7834C. Features. Description

Battery-Voltage. 1-Megabit (64K x 16) Unregulated. High-Speed OTP EPROM AT27BV1024. Features. Description. Pin Configurations

8-bit Microcontroller with 2K Bytes In-System Programmable Flash. ATtiny261A. Appendix A. Appendix A ATtiny261A Specification at 105 C

Smart RF AT86RF401-EK1. Application Note. AT86RF401-EK1 Smart RF MicroTransmitter Evaluation Kit Application Note. Functional Description

Rad Hard 128K x volt Very Low Power CMOS SRAM M65609E

256K (32K x 8) Unregulated Battery-Voltage High-Speed OTP EPROM AT27BV256

8-bit Microcontroller. Application Note. AVR083: Replacing ATmega163 by ATmega16

3-wire Serial EEPROM AT93C86A. Preliminary. Features. Description. Pin Configurations. 16K (2048 x 8 or 1024 x 16) VCC DC ORG GND CS SK DI DO

Application Note. Preliminary. 8-bit Microcontrollers

AT91 ARM Thumb Microcontroller s. AT91R40807 Electrical Characteristics

4-Megabit (512K x 8) OTP EPROM AT27C040. Features. Description. Pin Configurations

Obsolete Product(s) - Obsolete Product(s)

Description. Part numbers Order codes Packages Output voltages

Battery-Voltage. 1-Megabit (128K x 8) Unregulated OTP EPROM AT27BV010. Features. Description. Pin Configurations

8-bit RISC Microcontroller. Application Note. AVR042: AVR Hardware Design Considerations

Rad. Tolerant 8K x 8-5 volts Very Low Power CMOS SRAM AT65609EHW

Low-cost Phase-control IC with Soft Start


Power Meter Front End Design: The Delta Connection. Application Note. Power Meter Front End Design: The Delta Connection. Three-Phase Basics

Read/Write Transponder TK5552

Can Transceiver IC B10011S

1Mb (128K x 8) Low Voltage, One-time Programmable, Read-only Memory

Frequency Synthesizer for Radio Tuning ATR4256

1Mb (64K x 16) Unregulated Battery Voltage, High-speed, One-time Programmable, Read-only Memory

256K (32K x 8) Unregulated Battery. Programmable, Read-only Memory

Rad. Tolerant 128Kx8, 5-Volt Very Low Power CMOS SRAM M65608E

1Mb (128K x 8) Unregulated Battery Voltage, One-time Programmable, Read-only Memory

Standard Read/Write Crypto Identification IC. e5561

8-bit Microcontroller. Application Note. AVR040: EMC Design Considerations. Scope. Introduction

MIC5271. Applications. Low. output current). Zero-current off mode. and reduce power. GaAsFET bias Portable cameras. le enable pin, allowing the user

Transcription:

Features DC to DC Converter 1.9V / 2.5V (DCDC1) LDO Regulator 2.7V / 2.8V (LDO1) LDO Regulator 2.8V (LDO2) LDO Regulator 2.8V (LDO3) LDO Regulator 2.47V / 2.66 (LDO4) - Backup Battery Supply LDO Regulator 1.72V / 2.66 (LDO5) - RTC Supply Reset Generator 1. Description The AT73C211 is a power management device for digital, analog, interface, and, in some cases, RF and backup sections of add-on modules used as accessories in popular handheld devices like mobile phones, digital still cameras, PDAs and a wide range of multimedia devices. The AT73C211 can also be used to supply the CPU with a high-efficiency DC-DC Converter, a radio frequency transceiver with high power supply rejection ratio (PSRR) and noise performance low-dropout (LDO) regulators, or memories and analog sections with independent LDO channels. In addition, the AT73C211 integrates LDO regulators to recharge backup elements and convert its voltage to microcontroller RTC supply. LDO regulators and DC-DC converters output voltage can be programmed by a mask change. Power Management AT73C211

2. Functional Block Diagram Figure 2-1. AT73C211 Block Diagram VPAD VPAD UP-/OFF /OFF CREF ECO-MODE EN-ANALOG-B VBATT VBATT VBATT BAT-RTC 2.47 /2.66V 5 ma VCC-RTC 1.72 /2.66V 0.5mA A VBATT UP-/OFF /OFF CREF ECO-MODE EN-ANALOG-B VIN-REG1 VIN-REG2 BAT-RTC VCC-RTC EN-VIB VBACK A1 VBATT POR 10KHz OSC Vref RTC SUPPLY BLOCK EN LDO4 LDO5 PMC State Machine LS SPI reset en_vcore EN Over-Temp VIN 2.7V BB1 EN en_vcore BB1 EN VBATT>3.2V en_vcore en_vpad DEEP DISCHARGED EN 2.6V BB1 RESET GENERATOR 35ms State Machine Reset CORE DC/ DC VIN LX LP EN VIN EN VIN EN FB ANALOG LDO VOUT BB1 PAD LDO LP VOUT LDO2 VIBRATOR LDO VIN VOUT EN DCDC LDO1 2.8V LDO3 RESET-B D LX VCORE 1 AVCC A V-PAD VVIB VIB -OUT D RESET-B VCORE 1.9/2.5V / 300 ma AVCC 2.7/ 2.8V / 130 ma A V-PAD 2.8V / 80 ma VBATT V-VIB 2.8V /130 ma TEST 2 AT73C211

AT73C211 3. Pin Description Table 3-1. Pin Description Signal Pin Type A/D Description VBATT E1 VBATT1 Input supply /OFF D5 IPD D Key /OFF input, 1.5M Ohm pull-down UP-/OFF C6 I D Hold the Power from MCU RESET-B F6 OD D Reset open collector output. Need external pull-up to VBATT VIN-REG1 G6 VBATT2 Input supply for DC/DC converter LX F7 O A DC/DC converter output inductor ECO-MODE G5 IPD D Eco Mode, from MCU - sets VCORE, V-PAD in low power mode, 1.5M Ohm pull-down VCORE G4 O A DC/DC converter output (MCU core supply) 1 G7 Ground Ground of DC/DC converter VIN-REG2 A5 VBATT3 Input supply EN-ANALOG-B B5 IPD D Enable the analog LDO, active at logic 0, 1.5M Ohm pull-down AVCC B4 O A Analog LDO output (MCU chip analog supply) A A7 Ground Ground of AVCC, V-PAD and RTC LDO V-PAD B6 O A Digital LDO output (MCU chip digital PAD supply) VCC-RTC B7 O A MCU RTC supply output BAT-RTC A6 I/O A VIN-RF A3 VBATT4 Input supply A2 A2 Ground Ground VIN-VIB D7 VBATT5 Input supply for vibrator LDO RTC backup battery charger - must be connected through a 2.2K Ohm resistor to the backup battery EN-VIB E6 IPD D Vibrator driver input (from baseband chip), 1.5M Ohm pull-down VVIB E7 O A Vibrator LDO output (Voltage regulator) D1 Ground Ground CREF C7 O A Bandgap decoupling - 100 nf capacitor must be connected from this pin to ground BB1 D4 I D BB1 = 1 => VCORE = 2.5V, BB1= 0 => VCORE = 1.9V TEST E5 IPD A Connect to A 3

4. Functional Description 4.1 DC to DC Converter 1.9V/2.5V - 300 ma for Coprocessor Core The DC-to-DC converter is a synchronous mode DC-to-DC buck -switched regulator using fixed-frequency architecture (PWM) and capable of providing 300 ma of continuous current. It has two levels of voltage programming for the co-processor core (1.9V or 2.5V). The operating supply range is from 3.1V to 5.5V, making it suitable for Li-Ion, Li-polymer or Ni-MH battery applications. The DC-to-DC converter is based on pulse width modulation architecture to control the noise perturbation for switching noise sensitive applications (Wireless). The operating frequency is set to 900 khz using an internal clock, allowing the use of a small surface inductor and moderate output voltage ripple. The controller consists of a reference ramp generator, a feedback comparator, the logic driver used to drive the internal switches, the feedback circuits used to manage the different modes of operation and the over-current protection circuits. An economic mode has been defined to reduce quiescent current. A low-dropout voltage regulator in parallel to the DC-to-DC converter minimizes standby current consumption during standby mode. Figure 4-1. Dual-power DC-to-DC Converter V BATT ECO-MODE DC-to-DC Buck 1.9V or 2.5V 300 ma Internal FET L V CORE LDO 1.9V or 2.5V 10 ma Low Power C Low undershoot voltage is expected when going from PWM to LDO mode and vice-versa. The circuit is designed in order to avoid any spikes when transition between two modes is enabled. Figure 4-2. Low-power/Full-power DC-to-DC Converter Transition V CORE V CORE ECO-MODE High Power Low Power ECO-MODE High Power Low Power 4 AT73C211

AT73C211 Figure 4-3 shows typical efficiency levels of the DC-to-DC converter for several input voltages. Figure 4-3. DC-to-DC Converter with 1.9V Target Typical Case (1) 100 95 Efficiency (%) 90 85 80 VIN=3.1V 75 VIN=3.6V VIN=4.2V 70 0 50 100 150 200 250 300 350 400 Load Current (ma) Note: 1. L = 10 µh, ESR = 0.2 Ohm, c = 22 µf, @ESR = 0.1 Ohm 4.2 LDO1, LDO3 Regulators The PSRR measures the degree of immunity against voltage fluctuations achieved by a regulator. An example of its importance is in the case of a GSM phone when the antenna switch activates the RF power amplifier (PA). This causes a current peak of up to 2A on the battery, with an important spike on the battery voltage. The voltage regulator must filter or attenuate this spike. 5

Figure 4-4. Functional Diagram of LDO Single Mode V BATT V INT IBIAS V BG Pass Device V OUT V OUT1 V OUT2 Current Sensing and Limiter V OUTS R1 R2 Figure 4-5 shows the Power Supply Rejection Ratio as functions of frequency and battery voltage. If a noise signal occurs at 1 khz when the battery voltage is at 3V, the noise will be attenuated by 70 db (divided by more than 3000) at the output of the regulator. Consequently, a 2V spike on the battery is attenuated to less than 1 mv, which is low enough to avoid any risk of malfunction by a device supplied by the regulator. Figure 4-5. Power Supply Rejection Ratio in Function of Frequency and Battery Voltage PSRR [db] Power Supply Rejection Ratio at Full Load 10 100 1000 10000 100000-30 -35 V -40 BAT = 3V -45-50 -55 V BAT = 4.25V -60 V BAT = 5.5V -65-70 -75-80 Fre q [Hz] PSRR [db] Power Supply Rejection Ratio at Full Load versus Battery Voltage 3.0 3.5 4.0 4.5 5.0 5.5-30 -40-50 -60-70 -80 Freq = 1 khz -90 Freq = 20 khz Freq = 100 khz -100-110 Freq = 100 Hz -120 Ba tte ry Volta ge [V] 6 AT73C211

AT73C211 4.3 LDO2 Regulator The first approach to reducing standby current is to decrease the standby current inside the regulators themselves. Atmel achieves this by implementing a dual mode architecture where two output transistors are used in parallel as switches in the regulation loop. Figure 4-6 illustrates this architecture. Figure 4-6. Functional Diagram of LDO Dual Mode V BATT V BG LP LP V BG V OUT V VOUT1 V VOUT2 LP Current Sensing and Limiting V OUT R1 V CORE R2 BIAS, LP In Figure 4-6, the left-hand output transistor is sized large enough for the required output current under full load, for example, 100 ma. In order to achieve a sufficient margin of stability, the current sensing block uses a bias cell where the current consumption is linked to the required output current. The higher the output current, the higher the bias current needed to stabilize the loop. The right-hand output transistor delivers a very small output current, typically less than 1 ma, sufficient only to maintain the output voltage with enough current to cover the leakage current of the supplied device. This requires a much smaller bias current and, consequently, a smaller standby current inside the regulator. 7

5. Electrical Characteristics 5.1 Absolute Maximum Ratings Operating Temperature (Industrial)... -40 C to +85 C Storage Temperature... -55 C to +150 C Power Supply Input Pads... -0.3V to +5.5V *NOTICE: Stresses beyond those listed under Absolute Maximum Ratings may cause permanent damage to the device. This is a stress rating only and functional operation of the device at these or other conditions beyond those indicated in the operational sections of this specification is not implied. I/O Input (all except to power supply)... -0.3V to +3.3V Exposure to absolute maximum rating conditions for extended periods may affect device reliability. 5.2 DC to DC Converter Table 5-1. DC to DC Converter Electrical Characteristics (t AMB = -20 C to 85 C, VIN = 3.2V to 4.2V unless otherwise specified) V OUT I OUT Output Voltage Output Current BB1 = 0 1.9 V BB1 = 1 2.5 V PWM Mode (ECO-MODE = 0) 150 300 ma LDO Mode (ECO-MODE = 1) 5 ma I OFF Standby Current 0.1 1 µa E FF Efficiency I OUT = 10 ma to 200 ma @1.9V 90 % V DCLD Static Load Regulation 10% to 90% of I OUT(MAX) 7 mv V TRLD V DCLE Transient Load Regulation Static Line Regulation 10% to 90% of I OUT(MAX), T R = T F = 5µs 10% to 90% of I OUT(MAX), VIN = 3.2V to 4.2V 30 mv 20 mv 10% to 90% of I V TRLE Transient Line Regulation OUT(MAX), 35 mv VIN = 3.2V to 4.2V PSRR Ripple Rejection LDO Mode up to 1 KHz 40 45 db V LPFP V FPLP Overshoot Voltage Undershoot Voltage Voltage drop from LDO (ECO- MODE = 1) to PWM (ECO- MODE = 0) Voltage drop from PWM (ECO- MODE = 0) to LDO (ECO-MODE = 1) 0 10 mv -15 0 mv Table 5-2. DC to DC Converter External Components C OUT Output Capacitor Value 17 22 26 µf C ESR Output Capacitor ESR 100 mohm L OUT Output Inductor Value 8 10 12 µh L ESR Output Inductor ESR At 100 khz 1.1 Ohm 8 AT73C211

AT73C211 5.3 LDO1 Regulator Electrical Characteristics Table 5-3. LDO1 Electrical Characteristics (t AMB = -20 C to 85 C, VIN = 3.2V to 4.2V unless otherwise specified) V OUT BB1 = 0 2.7 V Output Voltage BB1 = 1 2.8 V I OUT Output Current 80 130 ma I QC Quiescent Current 195 µa V OUT Line Regulation V IN : 3V to 3.4V, I OUT = 130 ma 1 2 mv V PEAK Line Regulation Transient Same as above, T R = T F = 5 µs 1.5 2.85 mv V OUT Load Regulation 10% - 90% I OUT 3 mv V PEAK Load Regulation Transient Same as above, T R = T F = 5 µs 1.2 2.4 mv PSRR Ripple rejection F = 217 Hz; VIN = 3.6V 70 73 db V N Output Noise BW: 10 Hz to 100 khz 29 37 µv RMS T R Rise Time 100% I OUT, 10% - 90% V OUT 50 µs I SD Shut Down Current 1 µa Table 5-4. LDO1 External Components C OUT Output Capacitor Value 1.98 2.2 2.42 µf C ESR Output Capacitor ESR 100 khz 50 mohm 9

5.4 LDO2 Regulator Electrical Characteristics Table 5-5. LDO2 Electrical Characteristics (t AMB = -20 C to 85 C, VIN = 3.2V to 4.2V unless otherwise specified) V OUT Output Voltage 2.8 V I OUT I QC Output Current PWM Mode (ECO-MODE = 0) 80 ma LDO Mode (ECO-MODE = 1) 5 ma Quiescent Current PWM Mode (ECO-MODE = 0) 100 µa LDO Mode (ECO-MODE = 1) 10 µa V OUT Line Regulation V IN : 3V to 3.4V, I OUT = 80 ma 1 2 mv V PEAK Line Regulation Transient Same as above, T R = T F = 5 µs 1.5 2.85 mv V OUT Load Regulation 10% - 90% I OUT, VIN = 3V 3 mv V PEAK Load Regulation Transient Same as above, T R = T F = 5 µs 1.2 2.4 mv PSRR Ripple rejection F = 217 Hz; VIN = 3.6V 70 73 db V N Output Noise BW: 10 Hz to 100 khz 29 37 µv RMS T R Rise Time 100% I OUT, 10% - 90% V OUT 50 µs I SD Shut Down Current 1 µa Table 5-6. LDO2 External Components C OUT Output Capacitor Value 1.98 2.2 2.42 µf C ESR Output Capacitor ESR 100 khz 50 mohm 10 AT73C211

AT73C211 5.5 LDO3 Regulator Electrical Characteristics Table 5-7. LDO3 Electrical Characteristics (t AMB = -20 C to 85 C, VIN = 3.2V to 4.2V unless otherwise specified) V OUT Output Voltage 2.8 V I OUT Output Current 80 130 ma I QC Quiescent Current 195 µa V OUT Line Regulation V IN : 3V to 3.4V, I OUT = 130 ma 1 2 mv V PEAK Line Regulation Transient Same as above, T R = T F = 5 µs 1.5 2.85 mv V OUT Load Regulation 10% - 90% I OUT, VIN = 3V 3 mv V PEAK Load Regulation Transient Same as above, T R = T F = 5 µs 1.2 2.4 mv PSRR Ripple rejection F = 217 Hz; VIN = 3.6V 70 73 db V N Output Noise BW: 10 Hz to 100 khz 29 37 µv RMS T R Rise Time 100% I OUT, 10% - 90% V OUT 50 µs I SD Shut Down Current 1 µa Table 5-8. LDO3 External Components C OUT Output Capacitor Value 1.98 2.2 2.42 µf C ESR Output Capacitor ESR 100 khz 50 mohm 11

5.6 LDO4 Regulator Electrical Characteristics Table 5-9. LDO4 Electrical Characteristics (t AMB = -20 C to 85 C, VIN = 3.2V to 4.2V unless otherwise specified) V OUT BB1 = 0 2.47 V Output Voltage BB1 = 1 2.66 V I OUT Output Current 2 ma I QC Quiescent Current 10 µa V OUT Line Regulation V IN : 3V to 3.4V, I OUT = 2 ma 15 mv V PEAK Line Regulation Transient Same as above, T R = T F = 5 µs 30 mv V OUT Load Regulation 10% - 90% I OUT, VIN = 3V 15 mv V PEAK Load Regulation Transient Same as above, T R = T F = 5 µs 20 mv PSRR Ripple rejection F = 217 Hz; VIN = 3.6V 50 db I SD Shut Down Current 1 µa Table 5-10. LDO4 External Components C OUT Output Capacitor Value 1.98 2.2 2.42 µf C ESR Output Capacitor ESR 100 khz 100 mohm 12 AT73C211

AT73C211 5.7 LDO5 Regulator Electrical Characteristics Table 5-11. LDO5 Electrical Characteristics (t AMB = -20 C to 85 C, VIN = 3.2V to 4.2V unless otherwise specified) V OUT BB1 = 0 1.72 V Output Voltage BB1 = 1 2.66 V I OUT Output Current 0.5 ma I QC Quiescent Current 5 µa V OUT Line Regulation V IN : 3V to 3.4V, I OUT = 0.5 ma 15 mv V PEAK Line Regulation Transient Same as above, T R = T F = 5 µs 30 mv V OUT Load Regulation 10% - 90% I OUT, VIN = 3V 15 mv V PEAK Load Regulation Transient Same as above, T R = T F = 5 µs 20 mv PSRR Ripple rejection F = 217 Hz; VIN = 3.6V 50 db I SD Shut Down Current 1 µa Table 5-12. LDO4 External Components C OUT Output Capacitor Value 65 100 135 nf C ESR Output Capacitor ESR 100 khz 20 100 mohm 13

5.8 Package Outline (Top view) Figure 5-1. Forty-nine Ball FBGA Package (Top View) 1 2 3 4 5 6 7 A NC A2 VIN-RF VIN-REG2 BAT-RTC A 1 2 3 4 5 6 7 B NC NC NC AVCC EN-ANALOG-B V-PAD VCC-RTC 1 2 3 4 5 6 7 C NC NC NC NC NC UP-/OFF CREF 1 2 3 4 5 6 7 D NC NC BB1 /OFF NC VIN-VIB 1 2 3 4 5 6 7 E VBATT NC NC TEST EN-VIB VVIB 1 2 3 4 5 6 7 F NC NC NC NC RESET-B LX 1 2 3 4 5 6 7 G NC NC V-CORE ECO-MODE VIN-REG1 1 14 AT73C211

AT73C211 6. Revision History Table 6-1. Doc. Rev. 6199A Revision History Comments First issue. Change Request Ref. 15

Atmel Corporation 2325 Orchard Parkway San Jose, CA 95131, USA Tel: 1(408) 441-0311 Fax: 1(408) 487-2600 Regional Headquarters Europe Atmel Sarl Route des Arsenaux 41 Case Postale 80 CH-1705 Fribourg Switzerland Tel: (41) 26-426-5555 Fax: (41) 26-426-5500 Asia Room 1219 Chinachem Golden Plaza 77 Mody Road Tsimshatsui East Kowloon Hong Kong Tel: (852) 2721-9778 Fax: (852) 2722-1369 Japan 9F, Tonetsu Shinkawa Bldg. 1-24-8 Shinkawa Chuo-ku, Tokyo 104-0033 Japan Tel: (81) 3-3523-3551 Fax: (81) 3-3523-7581 Atmel Operations Memory 2325 Orchard Parkway San Jose, CA 95131, USA Tel: 1(408) 441-0311 Fax: 1(408) 436-4314 Microcontrollers 2325 Orchard Parkway San Jose, CA 95131, USA Tel: 1(408) 441-0311 Fax: 1(408) 436-4314 La Chantrerie BP 70602 44306 Nantes Cedex 3, France Tel: (33) 2-40-18-18-18 Fax: (33) 2-40-18-19-60 ASIC/ASSP/Smart Cards Zone Industrielle 13106 Rousset Cedex, France Tel: (33) 4-42-53-60-00 Fax: (33) 4-42-53-60-01 1150 East Cheyenne Mtn. Blvd. Colorado Springs, CO 80906, USA Tel: 1(719) 576-3300 Fax: 1(719) 540-1759 Scottish Enterprise Technology Park Maxwell Building East Kilbride G75 0QR, Scotland Tel: (44) 1355-803-000 Fax: (44) 1355-242-743 RF/Automotive Theresienstrasse 2 Postfach 3535 74025 Heilbronn, Germany Tel: (49) 71-31-67-0 Fax: (49) 71-31-67-2340 1150 East Cheyenne Mtn. Blvd. Colorado Springs, CO 80906, USA Tel: 1(719) 576-3300 Fax: 1(719) 540-1759 Biometrics/Imaging/Hi-Rel MPU/ High Speed Converters/RF Datacom Avenue de Rochepleine BP 123 38521 Saint-Egreve Cedex, France Tel: (33) 4-76-58-30-00 Fax: (33) 4-76-58-34-80 Literature Requests www.atmel.com/literature Disclaimer: The information in this document is provided in connection with Atmel products. No license, express or implied, by estoppel or otherwise, to any intellectual property right is granted by this document or in connection with the sale of Atmel products. EXCEPT AS SET FORTH IN ATMEL S TERMS AND CDI- TIS OF SALE LOCATED ATMEL S WEB SITE, ATMEL ASSUMES NO LIABILITY WHATSOEVER AND DISCLAIMS ANY EXPRESS, IMPLIED OR STATUTORY WARRANTY RELATING TO ITS PRODUCTS INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTY OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE, OR N-INFRINGEMENT. IN NO EVENT SHALL ATMEL BE LIABLE FOR ANY DIRECT, INDIRECT, CSEQUENTIAL, PUNITIVE, SPECIAL OR INCIDEN- TAL DAMAGES (INCLUDING, WITHOUT LIMITATI, DAMAGES FOR LOSS OF PROFITS, BUSINESS INTERRUPTI, OR LOSS OF INFORMATI) ARISING OUT OF THE USE OR INABILITY TO USE THIS DOCUMENT, EVEN IF ATMEL HAS BEEN ADVISED OF THE POSSIBILITY OF SUCH DAMAGES. Atmel makes no representations or warranties with respect to the accuracy or completeness of the contents of this document and reserves the right to make changes to specifications and product descriptions at any time without notice. Atmel does not make any commitment to update the information contained herein. Unless specifically provided otherwise, Atmel products are not suitable for, and shall not be used in, automotive applications. Atmel s products are not intended, authorized, or warranted for use as components in applications intended to support or sustain life. Atmel Corporation 2005. All rights reserved. Atmel, logo and combinations thereof, Everywhere You Are and others are registered trademarks or trademarks of Atmel Corporation or its subsidiaries. Other terms and product names may be trademarks of others. Printed on recycled paper.