Table of Contents

Advertisement

Quick Links

Click
here
for production status of specific part numbers.
MAX20335

General Description

The MAX20335 is a battery-charge-management solution
ideal for low-power wearable applications. The device
includes a linear battery charger with a smart power
selector and several power-optimized peripherals. The
MAX20335 features two ultra-low quiescent current buck
regulators and three ultra-low quiescent current low-dropout
(LDO) linear regulators, providing up to five regulated
voltages, each with an ultra-low quiescent current, allows
designers to minimize power consumption and extend
battery life in 24/7 operation devices, such as those in the
wearable market.
The battery charger features a smart power selector that
allows operation on a dead battery when connected to a
power source. To avoid overloading a power adapter, the
input current to the smart power selector is limited based
2
on an I
C register setting. If the charger power source
is unable to supply the entire system load, the smart
power control circuit supplements the system load with
current from the battery. The charger also supports
temperature dependent charge currents.
The two synchronous, high-efficiency step-down buck
regulators feature a variable frequency mode for increased
efficiency during light-load operation. The output voltage
of these regulators can be programmed through I
with the default preconfigured. The buck regulators can
support dynamic voltage scaling to further improve
system power consumption.
The three configurable LDOs each have a dedicated
input pin. Each LDO regulator output voltage can be
2
programmed through I
C with the default preconfigured.
The linear regulators can also be configured to operate
as power switches that may be used to disconnect the
quiescent load of the system peripherals.
The MAX20335 features a programmable power controller
that allows the device to be configured for applications
that require the device be in a true-off, or always-on,
state. The controller also provides a delayed reset signal
and voltage sequencing.
The MAX20335 is available in a 36-bump, 0.4mm pitch,
2.72mm x 2.47mm wafer-level package (WLP).
19-100288; Rev 6 6/21
PMIC with Ultra-Low I
Battery Chargers for Small Lithium Ion Systems

Benefits and Features

● Extend System Use Time Between Battery Charging
• Dual Ultra-Low-I
• Three Ultra-Low-I
• LDO1
• LDO2/3
● Easy-to-Implement Li+ Battery Charging
• Smart Power Selector
• 28V/-5.5V Tolerant Input
• Thermistor Monitor
● Minimize Solution Footprint Through High Integration
• Provides Five Regulated Voltage Rails
• Switch Mode Option on Each LDO
● Optimize System Control
2
C
• Monitors Pushbutton for Ultra-Low Power Mode
• Power-On Reset Delay and Voltage Sequencing
• On-Chip Voltage Monitor Multiplexer

Applications

● Wearable Electronics
● Fitness Monitors
● Rechargeable IoT devices
Ordering Information
Voltage Regulators and
Q
200mA Buck Regulators
Q
• Output Programmable from 0.7V to 2.275V and
0.7V to 3.85V
• 0.9μA (typ) Quiescent Current (Buck 1)
• Optional Fixed Peak-Current Mode to Optimize
Ripple Frequency in Noise-Sensitive Applications
100mA LDOs
Q
• Output Programmable from 0.8V to 3.6V
• 0.6μA (typ) Quiescent Current
• 2.7V to 5.5V Input with Dedicated Pin
• Output Programmable from 0.9V to 4V
• 1μA (typ) Quiescent Current
• 1.71V to 5.5V Input with Dedicated Pin
appears at end of data sheet.

Advertisement

Table of Contents
loading
Need help?

Need help?

Do you have a question about the MAX20335 and is the answer not in the manual?

Questions and answers

Summary of Contents for Maxim Integrated MAX20335

  • Page 1: General Description

    The controller also provides a delayed reset signal and voltage sequencing. The MAX20335 is available in a 36-bump, 0.4mm pitch, 2.72mm x 2.47mm wafer-level package (WLP). 19-100288; Rev 6 6/21...
  • Page 2: Table Of Contents

    C Register Descriptions............... 43 Maxim Integrated │ 2...
  • Page 3 Table 7. StatusB Register (0x03) ..............44 Maxim Integrated │ 3...
  • Page 4 Table 39. Register Default Values ..............65 Maxim Integrated │ 4...
  • Page 5: Typical Application Circuit

    10µF 2.2µH MPC1 B2LX PFN2 PFN2 VSYS L1IN LDO/ PFN1 1µF SWITCH 1 L1OUT VSYS VSYS L2IN LDO/ 1µF SWITCH 2 L2OUT VSYS MUX/ L3IN DIVIDER LDO/ 1µF SWITCH 3 L3OUT * OPTIONAL EXTERNAL FET Maxim Integrated │ 5 www.maximintegrated.com...
  • Page 6: Absolute Maximum Ratings

    RoHS status. Package thermal resistances were obtained using the method described in JEDEC specification JESD51-7, using a four-layer board. For detailed information on package thermal considerations, refer to www.maximintegrated.com/thermal-tutorial. Maxim Integrated │ 6 www.maximintegrated.com...
  • Page 7: Electrical Characteristics

    µA SD_BUCK1 hysterisis) Discharge Enabled Output Accuracy = 1mA -2.5 +2.5 BUCK1 B1OUT Buck1ISet = 100mA, C = 2.2µF, Peak-to-Peak Ripple PPRIPPLE1 = 1mA B1OUT 25mA step resolution set by Set Range PEAK PEAK_BUCK1 Buck1ISet[3:0]. Maxim Integrated │ 7 www.maximintegrated.com...
  • Page 8 = 10mA, Buck1ISet = 150mA, LOAD Efficiency Inductor = BOURNS SRP2010- BUCK1 2R2M, V = 1.2V B1OUT Buck1LowEMI = 0 BLX Rising/Falling Slew V/ns BLX_BUCK1 Rate Buck1LowEMI = 1 Thermal-Shutdown °C SHDN_BUCK1 Temperature Thermal-Shutdown °C SHDN_HYST_BUCK1 Temperature Hysteresis Maxim Integrated │ 8 www.maximintegrated.com...
  • Page 9 Buck2FFET = 0 0.27 Ω pMOS On-Resistance ONP_BUCK2 Buck2FFET = 1 0.55 Ω Buck2FFET = 0 0.24 0.45 Ω nMOS On-Resistance ONN_BUCK2 Buck2FFET = 1 0.43 Ω Freewheeling = 3.7V, V = 1.2V Ω ONFW_BUCK2 B2OUT On-Resistance Maxim Integrated │ 9 www.maximintegrated.com...
  • Page 10 Shutdown Supply Current with Active LDO1 disabled. LDO1ActDSC=1. µA SD_LDO1 Discharge Enabled Maximum Output L1OUT_MAX Current Output Voltage L1OUT = (V + 0.5V) or higher, L1IN L1OUT Output Accuracy -2.7 +2.7 LDO1 = 100µA L1OUT Maxim Integrated │ 10 www.maximintegrated.com...
  • Page 11 L1OUT 10Hz to 100kHz, V = 5V, L1IN = 2.5V L1OUT Output Noise µVrms NOISE 10Hz to 100kHz, V = 5V, L1IN = 1.2V L1OUT 10Hz to 100kHz, V = 5V, L1IN = 0.8V L1OUT Maxim Integrated │ 11 www.maximintegrated.com...
  • Page 12 = 1.2V, I = 5mA L2IN L2OUT = 0mA, time from 10% to L2OUT 90% of final value Turn-On Time ON_LDO2 = 0mA, time from 10% to L2OUT 0.25 0.65 90% of final value, Switch mode Maxim Integrated │ 12 www.maximintegrated.com...
  • Page 13 = 1.8V or lower L3IN Output Voltage L3OUT = (V + 0.5V) or higher, L3IN L3OUT Output Accuracy -2.7 +2.7 LDO3 = 100µA L3OUT = 3V, I = 100mA, L3IN L3OUT_ Dropout Voltage DROP_LDO3 LDO3VSet = 3V Maxim Integrated │ 13 www.maximintegrated.com...
  • Page 14 L3OUT Output Noise µVrms NOISE 10Hz to 100kHz, V = 5V, L3IN = 1.2V L3OUT 10Hz to 100kHz, V = 5V, L3IN = 0.9V L3OUT Falling 1.14 1.38 L3IN L3IN UVLO UVLO_LDO3 Rising 1.64 L3IN Maxim Integrated │ 14 www.maximintegrated.com...
  • Page 15 CHGIN to SYS = 4.4V, I = 500mA mΩ CHGIN-SYS CHGIN On-Resistance Thermal-Shutdown (Note 3) +150 CHGIN_SHDN Temperature Thermal-Shutdown CHGIN_SHDN_HYS Temperature Hysteresis Input Current Soft-Start SFST_LIM Time Internal Supply rising, V = 4.2V CCINT_TH CHGIN Switchover Threshold Maxim Integrated │ 15 www.maximintegrated.com...
  • Page 16 CHG_LIM Threshold Temperature BAT-to-SYS Switch-On SYS falling BAT-SYS-ON Threshold BAT-to-SYS Switch-Off SYS rising -1.5 BAT-SYS-OFF Threshold SYS-BAT Regulation BatReg BatReg BatReg = 5V, I = 1mA SYS_REG CHGIN Voltage + 140mV + 200mV + 260mV Maxim Integrated │ 16 www.maximintegrated.com...
  • Page 17 VPChg = 001 2.15 2.25 2.35 VPChg = 010 2.40 VPChg = 011 2.55 Prequalification BAT_PChg Threshold VPChg = 100 VPChg = 101 2.85 VPChg = 110 VPChg = 111 3.15 Prequalification BAT_PChg_HYS Threshold Hysteresis Maxim Integrated │ 17 www.maximintegrated.com...
  • Page 18 BatReg = 1001 BatReg = 1010 4.55 BatReg = 1011 BatReChg = 00 - 70 BatReg BatReChg = 01 - 120 BAT Recharge BatReg BatReChg Threshold BatReChg = 10 -170 BatReg BatReChg = 11 -220 BatReg Maxim Integrated │ 18 www.maximintegrated.com...
  • Page 19 THM Warm Threshold falling 30.9 32.9 34.9 %CAP THM Cool Threshold rising 62.5 64.5 66.5 THM Cold Threshold rising 71.9 73.9 75.9 THM Disable Threshold rising THM Threshold Hysteresis THM Input Leakage µA LKG_THM Maxim Integrated │ 19 www.maximintegrated.com...
  • Page 20 Setup Time for a Repeated START µs SU:STA Condition Data Hold Time (Note 9) µs HD:DAT Data Setup Time (Note 9) SU:DAT Setup Time for STOP µs SU:STO Condition Spike Pulse Widths Suppressed by Input (Note 10) Filter Maxim Integrated │ 20 www.maximintegrated.com...
  • Page 21 (t ) of the SCL signal. HD:DAT Note 10: Filters on SDA and SCL suppress noise spikes at the input buffers and delay the sampling instant. Maxim Integrated │ 21 www.maximintegrated.com...
  • Page 22: Typical Operating Characteristics

    L1OUT L2OUT = 5V CHGIN = 600mA 3.05 3.05 = 3.3V, 3.7V, 4.2V = 3.3V, 3.7V, 4.2V 3.00 3.00 ILimCntl[1:0] = 0x02 ILimCntl[1:0] = 0x01 2.95 2.95 2.90 2.90 TEMPERATURE (°C) (mA) (mA) L1OUT L2OUT Maxim Integrated │ 22 www.maximintegrated.com...
  • Page 23 = 4.2V = 3.7V = 3.7V 200mV/div = 3.3V = 3.3V = 1.8V B2OUT 50mA/div = 0.7V INDUCTOR = TOKO B2OUT INDUCTOR = TOKO DFE201610E0-2R2M DFE201610E0-2R2M 40µs/div 0.001 1000 0.001 1000 (mA) (mA) B2OUT B2OUT Maxim Integrated │ 23 www.maximintegrated.com...
  • Page 24 DFE201610E0-2R2M 1.00 0.60 0.001 1000 (mA) (mA) B1OUT (mA) B1OUT B1OUT BUCK1 TRANSIENT RESPONSE BUCK2 TRANSIENT RESPONSE toc25 toc26 = 1.2V = 1.8V B1OUT B2OUT 20mV/div B1OUT 20mV/div B2OUT B1OUT 50mA/div 50mA/div B2OUT 20µs/div 20µs/div Maxim Integrated │ 24 www.maximintegrated.com...
  • Page 25: Bump Configuration

    LDO2 Output. Bypass with a minimum 1µF capacitor to GND. L2IN LDO2 Input Open-Drain, Active-Low Interrupt Output. Voltage Monitor Pin Battery Connection. Connect BAT to a positive battery terminal, bypass BAT with a minimum 1µF B5,B6 capacitor to GND. Maxim Integrated │ 25 www.maximintegrated.com...
  • Page 26 Note: All capacitance values listed in this document refer to effective capacitance. Be sure to specify capacitors that will meet these requirements under typical system operating conditions taking into consideration the effects of voltage and temperature. Maxim Integrated │ 26 www.maximintegrated.com...
  • Page 27: Block Diagram

    Power On/Off and Reset Control The behavior of power function control pins (PFN1 and Power Regulation PFN2) is preconfigured to support one of the multiple The MAX20335 family includes two high-efficiency, low types of wearable application cases. Table 1 describes...
  • Page 28: Table 1. Power Function Input Control Modes

    * Pullup is connected to an internal supply, V . (V if V > V , or V if V < V CCINT CCINT CCINT_TH CCINT CCINT_TH ** PwrRstCfg[3:0] is read-only; the functions of PFN1 and PFN2 cannot be changed through I Maxim Integrated │ 28 www.maximintegrated.com...
  • Page 29: Figure 1. Power Function Input Control Modes Flow Diagrams

    MAX20335 PMIC with Ultra-Low I Voltage Regulators and Battery Chargers for Small Lithium Ion Systems Figure 1. Power Function Input Control Modes Flow Diagrams Maxim Integrated │ 29 www.maximintegrated.com...
  • Page 30: Power Sequencing

    100% % OF t *KIN PRESS TURN-ON ENABLED VIA SPECIFIC PwrRstCfg ONLY **AFTER BEING ENABLED, THE BUCK CONVERTERS HAVE AN 8ms (TYP) BLANKING TIME BEFORE THE OUTPUT VOLTAGE STARTS TO RISE. Figure 2a. Power-On Sequencing Maxim Integrated │ 30 www.maximintegrated.com...
  • Page 31: Smart Power Selector

    In case the die temperature exceeds the normal limit, the functions are: MAX20335 will attempt to limit the temperature increase ● When the system load requirements are less than the by reducing the input current from CHGIN. In this condi-...
  • Page 32: System Load Switch

    MAX20335 enters This is useful for handling loads that are nominally below overvoltage lockout (OVL). OVL protects the MAX20335 the input current limit but have high current peaks exceeding and downstream circuitry from high-voltage stress up to the input current limit.
  • Page 33: Fast-Charge Current Setting

    T1_T2, T2_T3, and T3_T4 zones. However, JEITA Monitoring 1 sets the battery termination voltage to The MAX20335 uses an external resistor connected from for all zones, while JEITA Monitoring 2 sets the SET to GND to set the fast-charge current. The pre-charge...
  • Page 34: Figure 4A. Charging Behavior Using Thermistor Monitoring Mode

    REGULATED VOLTAGE REGULATED VOLTAGE (JEITA MONITORING 1) (JEITA MONITORING 2) BATREG BATREG -150mV -150mV CHARGING CHARGING CHARGING CHARGING CHARGING CHARGING TEMPERATURE (°C) TEMPERATURE (°C) Figure 4b. Charging Behavior Using JEITA Monitoring 1 and 2 Modes Maxim Integrated │ 34 www.maximintegrated.com...
  • Page 35: C Interface

    The configuration settings and status information provided through this interface are detailed in the register descriptions. C Addresses The registers of the MAX20335 are accessed through the slave address of 0101000 (0x50 for writes/0x51 for reads). Maxim Integrated │ 35...
  • Page 36: Thermistor Monitoring With Charger Shutdown

    ** CHARGE TIMER IS SLOWED BY 50% IF I < I / 2 AND PAUSED IF I < I /5 ONLY IN FAST CHARGE CONSTANT CURRENT STATE FCHG FCHG Figure 5a. Charger State Diagram (Thermistor Monitoring with Charger Shutdown) Maxim Integrated │ 36 www.maximintegrated.com...
  • Page 37: Figure 5B. Battery Charger State Diagram (Jeita Monitoring With Charger Shutdown)

    < I /5 ONLY IN FAST CHARGE CONSTANT FCHG FCHG CURRENT STATE WHERE I IS THE EFFECTIVE FAST CHARGE CURRENT INCLUDING JEITA CURRENT LIMITATION FCHG Figure 5b. Battery Charger State Diagram (JEITA Monitoring with Charger Shutdown) Maxim Integrated │ 37 www.maximintegrated.com...
  • Page 38: I 2 C Interface

    MAX20335 to write mode. The address is SDA). The interface supports a clock frequency of up to the first byte of information sent to the MAX20335 after 400kHz. SCL and SDA require pullup resistors that are the START condition.
  • Page 39: Burst Write

    Figure 8. Burst Write Sequence READ SINGLE BYTE DEVICE SLAVE ADDRESS - W REGISTER ADDRESS DEVICE SLAVE ADDRESS - R 8 DATA BITS FROM MASTER TO SLAVE FROM SLAVE TO MASTER Figure 9. Read Byte Sequence Maxim Integrated │ 39 www.maximintegrated.com...
  • Page 40: Burst Read

    Data transfers are acknowledged with an acknowledge bit line (ACK) or a not-acknowledge bit (NACK). Both the master and the MAX20335 generate ACK bits. To generate an 4) The master sends the 8-bit register address ACK, pull SDA low before the rising edge of the ninth...
  • Page 41: I 2 C Register Map

    MAX20335 PMIC with Ultra-Low I Voltage Regulators and Battery Chargers for Small Lithium Ion Systems Maxim Integrated │ 41 www.maximintegrated.com...
  • Page 42 MAX20335 PMIC with Ultra-Low I Voltage Regulators and Battery Chargers for Small Lithium Ion Systems Maxim Integrated │ 42 www.maximintegrated.com...
  • Page 43: I 2 C Register Descriptions

    Chip_Id[7:0] bits show information about the version of the MAX20335. Table 5. ChipRev Register (0x01) ADDRESS: 0x01 MODE: Read-Only NAME Chip_Rev[7:0] Chip_Rev[7:0] Chip_Rev[7:0] bits show information about the revision of the MAX20335 silicon. Table 6. StatusA Register (0x02) ADDRESS: 0x02 MODE: Read-Only NAME — —...
  • Page 44: Table 7. Statusb Register (0X03)

    1 = Charger is running in thermal regulation mode and charging current is being actively reduced to prevent device overheating. Status of Time-Out Condition ChgTmo 0 = Charger is running normally, or disabled. 1 = Charger has reached a time-out condition. ChgStat =1 11 in this condition (see Figure 5). Maxim Integrated │ 44 www.maximintegrated.com...
  • Page 45: Table 8. Statusc Register (0X04)

    1 = LDO1 in Thermal Off Mode 0 = LDO2 NOT in Thermal Off mode ThrmLDO2 1 = LDO2 in Thermal Off Mode 0 = LDO3 NOT in Thermal Off mode ThrmLDO3 1 = LDO3 in Thermal Off Mode Maxim Integrated │ 45 www.maximintegrated.com...
  • Page 46: Table 9. Inta Register (0X05)

    Input Voltage Limit caused interrupt ThrmBuck1Int Change in ThrmBuck1 caused interrupt. ThrmBuck2Int Change in ThrmBuck2 caused interrupt. ThrmLDO1Int Change in ThrmLDO1 caused interrupt. ThrmLDO2Int Change in ThrmLDO2 caused interrupt. ThrmLDO3Int Change in ThrmLDO3 caused interrupt. Maxim Integrated │ 46 www.maximintegrated.com...
  • Page 47: Table 11. Intmaska Register (0X07)

    ThermRegIntM masks the ThermRegInt interrupt in the IntA register (0x05). ThermRegIntM 0 = Mask 1 = Not masked ChgTmoIntM masks the ChgTmoInt interrupt in the IntA register (0x05). ChgTmoIntM 0 = Mask 1 = Not masked Maxim Integrated │ 47 www.maximintegrated.com...
  • Page 48: Table 12. Intmaskb Register (0X08)

    111 = 4.3V CHGIN Custom Input Current Limit (see Electrical Characteristics table for details) 00 = 0mA ILimCntl[1:0] 01 = 100mA 10 = 500mA 11 = 1000mA *Register is reset to default value upon CHGIN rising edge. Maxim Integrated │ 48 www.maximintegrated.com...
  • Page 49: Table 14. Chgcntla Register (0X0A)

    1010 = 4.55V 1011 = 4.6V 1100…1111 = Reserved On/Off Control for Charger (does not affect SYS node). ChgEn 0 = Charger disabled. 1 = Charger enabled. *Register is reset to default value upon CHGIN rising edge. Maxim Integrated │ 49 www.maximintegrated.com...
  • Page 50: Table 15. Chgcntlb Register (0X0B)

    00 = 0.05 x I FChg ChgDone[1:0] 01 = 0.1 x I FChg 10 = 0.2 x I FChg 11 = 0.3 x I FChg *Register is reset to default value upon CHGIN rising edge. Maxim Integrated │ 50 www.maximintegrated.com...
  • Page 51: Table 16. Chtmr Register (0X0C)

    01 = 150min 10 = 300min 11 = 600min Precharge Timer Setting 00 = 30min PChgTmr[1:0] 01 = 60min 10 = 120min 11 = 240min *Register is reset to default value upon CHGIN rising edge. Maxim Integrated │ 51 www.maximintegrated.com...
  • Page 52: Table 17. Buck1Cfg Register (0X0D)

    Buck1 Freewheeling Behavior 0 = Freewheeling FET turn-on at inductor current zero-crossing. Buck1PFWDis 1 = Freewheeling FET turn-on after the inductor current zero-crossing and LX node high. For voltage settings > 1.5V, this setting can improve efficiency Maxim Integrated │ 52 www.maximintegrated.com...
  • Page 53: Table 18. Buck1Vset Register (0X0E)

    Buck2 Freewheeling Behavior 0 = Freewheeling FET turn-on at inductor current zero-crossing. Buck2PFWDis 1 = Freewheeling FET turn-on after the inductor current zero-crossing and LX node high. For voltage settings > 1.5V, this setting can improve efficiency Maxim Integrated │ 53 www.maximintegrated.com...
  • Page 54: Table 20. Buck2Vset Register (0X10)

    Buck2 Inductor Peak current setting. 25mA step 0000 = Reserved 0001 = Reserved Buck2ISet[3:0] 0010 = 50mA 1111 = 375mA Buck1 Inductor Peak Current Setting. 25mA step 0000 = Reserved 0001 = Reserved Buck1ISet[3:0] 0010 = 50mA 1111 = 375mA Maxim Integrated │ 54 www.maximintegrated.com...
  • Page 55: Table 22. Ldo1Cfg Register (0X12)

    Read/Write or Read-Only if WriteProtect Enabled (see Table 38) NAME LDO1Vset[4:0] LDO1 Output Voltage Setting Linear Scale from 0.8V to 3.6V in 100mV increments 00000 = 0.8V LDO1VSet[4:0] 00001 = 0.9V … 11100 = 3.6V >11101 = N/A Maxim Integrated │ 55 www.maximintegrated.com...
  • Page 56: Table 24. Ldo2Cfg Register (0X14)

    Read/Write or Read-Only if WriteProtect Enabled (see Table 38) NAME — — — LDO2Vset[4:0] LDO2 Output Voltage Setting Linear Scale from 0.9V to 4.0V in 100mV increments 00000 = 0.9V LDO2VSet[4:0] 00001 = 1.0V 11111 = 4.0V Maxim Integrated │ 56 www.maximintegrated.com...
  • Page 57: Table 26. Ldo3Cfg Register (0X16)

    Read/Write or Read-Only if WriteProtect Enabled (see Table 38) NAME — — — LDO3Vset[4:0] LDO3 Output Voltage Setting Linear Scale from 0.9V to 4.0V in 100mV increments 00000 = 0.9V LDO3VSet[4:0] 00001 = 1.0V … 11111 = 4.0V Maxim Integrated │ 57 www.maximintegrated.com...
  • Page 58: Table 28. Thrmcfg Register (0X18)

    01 = Charging enabled between T1 and T3 10 = Charging enabled between T1 and T4 11 = Charging enabled between T1 and T4, Voltage reduced below T2 and above T3 *Register is reset to default value upon CHGIN rising edge. Maxim Integrated │ 58 www.maximintegrated.com...
  • Page 59: Table 29. Thrmcfg Register (0X19)

    100 = MON connected to a resistive partition of BUCK2 OUT 101 = MON connected to a resistive partition of LDO1 OUT 110 = MON connected to a resistive partition of LDO2 OUT 111 = MON connected to a resistive partition of LDO3 OUT Maxim Integrated │ 59 www.maximintegrated.com...
  • Page 60: Table 31. Bootcfg Register (0X1B)

    PFN2 In/Out State PFN2 0 = pin low 1 = pin high MPC1 Input State MPC1 0 = pin low 1 = pin high MPC0 Input State MPC0 0 = pin low 1 = pin high Maxim Integrated │ 60 www.maximintegrated.com...
  • Page 61: Table 33. Buck1/2Extra Control Register (0X1D)

    (reduces active FET size by 50% and increases efficiency for loads <100mA.) Buck1 Force FET Scaling Buck1FFET 0 = FET Scaling only enabled during the Buck1 Turn-On Sequence 1 = FET Scaling enabled during the Buck1 Turn-On Sequence and also in the Buck1 Steady ON state Maxim Integrated │ 61 www.maximintegrated.com...
  • Page 62: Table 34. Pwrcfg Register (0X1E)

    0xD4 = issues a soft reset (reset pulse only) After the written value has been validated by the internal logic, this register is cleared automatically. Any other commands will be ignored. See Table 1 for the available PwrCmd for each PwrRstCfg value. Maxim Integrated │ 62 www.maximintegrated.com...
  • Page 63: Applications Information

    Input Capacitor Selection The input capacitors of the buck converters reduce the The buck converters of the MAX20335 are optimized for use with a tiny inductor and small ceramic capacitors. The current peaks drawn from the battery or input power source and reduces switching noise in the IC.
  • Page 64: Table 38. Register Bit Default Values

    T3_T4_IFchg[2:0] 1.0 x IFChg 1.0 x IFChg 1.0 x IFChg 0.2 x IFChg 1.0 x IFChg T3_T4_IFchg[2:0] 1.0 x IFChg 1.0 x IFChg ChgAlwTry Retry Retry Retry Latch Off Latch Off ChgAlwTry Latch Off Retry Maxim Integrated │ 64 www.maximintegrated.com...
  • Page 65: Table 39. Register Default Values

    0x28 0x59 0x1D Buck1/2Extra 0x00 0x00 0x00 0x00 0x00 0x1D Buck1/2Extra 0x00 0x00 0x1E PwrCfg 0x01 0x81 0x01 0x81 0x81 0x1E PwrCfg 0x01 0x01 0x1F PwrCmd 0x00 0x00 0x00 0x00 0x00 0x1F PwrCmd 0x00 0x00 Maxim Integrated │ 65 www.maximintegrated.com...
  • Page 66: Ordering Information

    36 WLP MAX20335GEWX+ -40°C to +85°C 36 WLP MAX20335GEWX+T -40°C to +85°C 36 WLP MAX20335JEWX+ -40°C to +85°C 36 WLP MAX20335JEWX+T -40°C to +85°C 36 WLP +Denotes a lead(Pb)-free package/RoHS-compliant package. T = Tape and reel. Maxim Integrated │ 66 www.maximintegrated.com...
  • Page 67: Revision History

    Maxim Integrated cannot assume responsibility for use of any circuitry other than circuitry entirely embodied in a Maxim Integrated product. No circuit patent licenses are implied. Maxim Integrated reserves the right to change the circuitry and specifications without notice at any time. The parametric values (min and max limits) shown in the Electrical Characteristics table are guaranteed.

Table of Contents