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5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR

WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION © SII Semiconductor Corporation, 2016 Rev.1.0_00 The S-1317 Series, developed by using the CMOS technology, is a positive voltage regulator IC , which features super low current consumption and low dropout voltage. This IC has low current consumption of 0.35 μA typ. and high-accuracy output voltage of ±1.0%. It is most suitable for use in portable equipment and battery-powered devices.  Features

  • Output voltage: 1.0 V to 3.5 V, selectable in 0.05 V step
  • Input voltage: 1.5 V to 5.5 V
  • Output voltage accuracy: ±1.0% (1.0 V to 1.45 V output product: ±15 mV) (Ta = +25°C)
  • Dropout voltage: 20 mV typ. (2.5 V output product, at IOUT = 10 mA) (Ta = +25°C)
  • Current consumption during operation: 0.35 μA typ. (Ta = +25°C)
  • Output current: Possible to output 100 mA (at VIN ≥ VOUT(S) + 1.0 V)*1
  • Input capacitor: A ceramic capacitor can be used. (1.0 μF or more)
  • Output capacitor: A ceramic capacitor can be used. (1.0 μF to 100 μF)
  • Built-in overcurrent protection circuit: Li mits overcurrent of output transistor.
  • Operation temperature range: Ta = −40°C to +85°C
  • Lead-free (Sn 100%), halogen-free *1. Please make sure that the loss of the IC will not exceed the power dissipation when the output current is large.  Applications
  • Constant-voltage power supply for battery-powered device
  • Constant-voltage power supply for portable communication device, digital camera, and digital audio player
  • Constant-voltage power supply for home electric appliance  Packages
  • SOT-23-5
  • HSNT-4(1010)

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00  Block Diagram VIN VSS VOUT Reference voltage circuit Overcurrent protection circuit *1. Parasitic diode Figure 1

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series  Product Name Structure Users can select output vo ltage and package type for the S-1317 Series. Refer to " 1. Product name " regarding the contents of product name, " 2. Packages " regarding the package drawings and " 3. Product name list " regarding details of the product name. 1. Product name S-1317 A xx - xxxx U 4 Product type Package abbreviation and IC packing specifications*1 M5T1: SOT-23-5, Tape A4T2: HSNT-4(1010), Tape Output voltage*2 10 to 35 (e.g., when the output voltage is 1.0 V, it is expressed as 10.) Environmental code U: Lead-free (Sn 100%), halogen-free *1. Refer to the tape drawing. *2. Contact our sales office when the product which has 0.05 V step is necessary. 2. Packages Table 1 Package Drawing Codes Package Name Dimension Tape Reel Land SOT-23-5 MP005-A-P-SD MP005-A-C-SD MP005-A-R-SD − HSNT-4(1010) PL004-A-P-SD PL004-A- C-SD PL004-A-R-SD PL004-A-L-SD

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00 3. Product name list Table 2 Output Voltage SOT-23-5 HSNT-4(1010)

1.0 V ± 15 mV S-1317A10-M5T1U4 S-1317A10-A4T2U4

1.2 V ± 15 mV S-1317A12-M5T1U4 S-1317A12-A4T2U4

1.8 V ± 1.0% S-1317A18-M5T1U4 S-1317A18-A4T2U4 2.5 V ± 1.0% S-1317A25-M5T1U4 S-1317A25-A4T2U4 3.0 V ± 1.0% S-1317A30-M5T1U4 S-1317A30-A4T2U4 Remark Please contact our sales office for products with specifications other than the above.

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series  Pin Configurations 1. SOT-23-5 13 2 4 5 Top view Figure 2 Table 3 Pin No. Symbol Description

1 VIN Input voltage pin

2 VSS GND pin

3 NC*1 No connection

4 NC*1 No connection

5 VOUT Output voltage pin

*1. The NC pin is electrically open. The NC pin can be connected to the VIN pin or the VSS pin. 2. HSNT-4(1010) Top view Bottom view Figure 3 Table 4 Pin No. Symbol Description

1 VOUT Output voltage pin

3 NC*2 No connection

4 VIN Input voltage pin

*1. Connect the heat sink of backside at shadowed area to the board, and set electric potential open or GND. However, do not use it as the function of electrode. *2. The NC pin is electrically open. The NC pin can be connected to the VIN pin or the VSS pin.

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00  Absolute Maximum Ratings Table 5 (Ta = +25°C unless otherwise specified) Item Symbol Absolute Maximum Rating Unit Input voltage VIN V SS − 0.3 to VSS + 6.0 V Output voltage VOUT V SS − 0.3 to VIN + 0.3 V Output current IOUT 120 mA Operation ambient temperature T opr −40 to +85 °C Storage temperature Tstg −40 to +125 °C Caution The absolute maximum ratings are rated values exceeding whic h the product could suffer physical damage. These values must therefore not be exceeded under any conditions.  Thermal Resistance Value Table 6 Item Symbol Condition Min. Typ. Max. Unit Junction-to-ambient thermal resistance*1 θja SOT-23-5 Board A − 192 − ° C/W Board B − 160 − ° C/W Board C − − − ° C/W Board D − − − ° C/W Board E − − − ° C/W HSNT-4(1010) Board A − 378 − ° C/W Board B − 317 − ° C/W Board C − − − ° C/W Board D − − − ° C/W Board E − − − ° C/W *1. Test environment: compliance with JEDEC STANDARD JESD51-2A Remark Refer to " Power Dissipation" and "Test Board" for details.

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series  Electrical Characteristics Table 7 (Ta = +25°C unless otherwise specified) Item Symbol Condition Min. Typ. Max. Unit Test Circuit Output voltage*1 VOUT(E) VIN = VOUT(S) + 1.0 V, IOUT = 10 mA 1.0 V ≤ VOUT(S) < 1.5 V VOUT(S) − 0.015 VOUT(S) VOUT(S) + 0.015 V 1 1.5 V ≤ VOUT(S) ≤ 3.5 V VOUT(S) × 0.99 VOUT(S) VOUT(S) × 1.01 V 1 Output current*2 IOUT V IN ≥ VOUT(S) + 1.0 V 100*5 − − mA 3 Dropout voltage*3 Vdrop I OUT = 10 mA 1.0 V ≤ VOUT(S) < 1.1 V 0.50 − − V 1 1.1 V ≤ VOUT(S) < 1.2 V 0.40 − − V 1 1.2 V ≤ VOUT(S) < 1.3 V 0.30 − − V 1 1.3 V ≤ VOUT(S) < 1.4 V 0.20 − − V 1 1.4 V ≤ VOUT(S) < 1.5 V 0.10 − − V 1 1.5 V ≤ VOUT(S) < 1.7 V − 0.050 0.080 V 1 1.7 V ≤ VOUT(S) < 1.8 V − 0.040 0.060 V 1 1.8 V ≤ VOUT(S) < 2.0 V − 0.040 0.050 V 1 2.0 V ≤ VOUT(S) < 2.5 V − 0.030 0.040 V 1 2.5 V ≤ VOUT(S) < 2.8 V − 0.020 0.030 V 1 2.8 V ≤ VOUT(S) < 3.0 V − 0.019 0.021 V 1 3.0 V ≤ VOUT(S) ≤ 3.5 V − 0.018 0.020 V 1 Line regulation ΔVOUT1 ΔVIN•VOUT VOUT(S) + 0.5 V ≤ VIN ≤ 5.5 V, IOUT = 10 mA − 0.05 0.2 %/V 1 Load regulation ΔVOUT2 V IN = VOUT(S) + 1.0 V, 1 μA ≤ IOUT ≤ 50 mA − 20 40 mV 1 Output voltage temperature coefficient*4 ΔVOUT ΔTa•VOUT VIN = VOUT(S) + 1.0 V, IOUT = 10 mA, Current consumption during operation ISS1 VIN = VOUT(S) + 1.0 V, no load − 0.35 0.53 μA 2 Input voltage VIN − 1.5 − 5.5 V − Short-circuit current I short V IN = VOUT(S) + 1.0 V, VOUT = 0 V − 60 − mA 3 *1. VOUT(S): Set output voltage VOUT(E): Actual output voltage Output voltage when fixing I OUT (= 10 mA) and inputting VOUT(S) + 1.0 V *2. The output current at which the output voltage becomes 95% of VOUT(E) after gradually increasing the output current. *3. Vdrop = VIN1 − (VOUT3 × 0.98) V IN1 is the input voltage at which the output voltage becomes 98% of VOUT3 after gradually decreasing the input voltage. VOUT3 is the output voltage when VIN = VOUT(S) + 1.0 V and IOUT = 10 mA. *4. A change in the temperature of the output voltage [mV/°C] is calculated using the following equation. ΔVOUT ΔTa []mV/°C *1 = VOUT(S) []V *2 × ΔVOUT ΔTa•VOUT []ppm/°C *3 ÷ 1000 *1. Change in temperature of output voltage *2. Set output voltage *3. Output voltage temperature coefficient *5. Due to limitation of the power dissipat ion, this value may not be satisfied. Attention should be paid to the power dissipation when the output current is large. This specification is guaranteed by design.

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series  Standard Circuit CIN *1 CL Input Output GNDSingle GND VOUTVIN VSS *1. C IN is a capacitor for stabilizing the input. *2. C L is a capacitor for stabilizing the output. Figure 7 Caution The above connection diag ram and constants will not guara ntee successful operation. Perform thorough evaluation including the temperature characteristics with an actual application to set the constants.  Condition of Application Input capacitor (CIN): A ceramic capacitor with capacitance of 1.0 μF or more is recommended. Output capacitor (CL): A ceramic capacitor with capacitance of 1.0 μF to 100 μF is recommended. Caution Generally, in a voltage regul ator, an oscillation may occur depe nding on the selection of the external parts. Perform thorough evaluation including the temperature characteristics with an actual application using the above capacitors to confirm no oscillation occurs.  Selection of Input Capacitor (CIN) and Output Capacitor (CL) The S-1317 Series requires C L between the VOUT pin and the VSS pin fo r phase compensation. The operation is stabilized by a ceramic capac itor with capacitance of 1.0 μF to 100 μF. When using an OS capacitor, a tantalum capacitor or an aluminum electrolytic c apacitor, the capacitance must also be 1.0 μF to 100 μF. However, an oscillation may occur depending on the equivalent series resistance (ESR). Moreover, the S-1317 Series requires C IN between the VIN pin and the VSS pin for a stable operation. Generally, an oscillaiton may occur when a voltage regulator is used under the conditon that the impedance of the power supply is high. Note that the output voltage transient characteristics vary depending on the capacitance of CIN and CL and the value of ESR. Caution Perform thorough evaluation including the temperature characteristics with an actual application to select CIN and CL.

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00  Explanation of Terms 1. Output voltage (V OUT) This voltage is output at an accuracy of ±1.0% or ± 15 mV *2 when the input voltage, the output current and the temperature are in a certain condition*1. *1. Differs depending on the product. *2. When V OUT < 1.5 V: ±15 mV, when VOUT ≥ 1.5 V: ±1.0% Caution If the certain condition is not satisfied, the output voltag e may exceed the accuracy range of ±1.0% or ±15 mV. Refer to " Electrical Characteristics" for details. 2. Line regulation  ΔVOUT1 ΔVIN • VOUT Indicates the dependency of the output voltage against the input voltage. The value s hows how much the output voltage changes due to a change in the input voltage after fixing output current constant. 3. Load regulation ( ΔVOUT2) Indicates the dependency of the output voltage against the out put current. The value shows how much the output voltage changes due to a change in the output current after fixing input voltage constant. 4. Dropout voltage (V drop) Indicates the difference between input voltage (V IN1) and the output voltage when t he output voltage becomes 98% of the output voltage value (VOUT3) at VIN = VOUT(S) + 1.0 V after the input voltage (VIN) is decreased gradually. Vdrop = VIN1 − (VOUT3 × 0.98)

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series 5. Output voltage temperature coefficient  ΔVOUT ΔTa•VOUT The shaded area in Figure 8 is the range where V OUT varies in the operation te mperature range when the output voltage temperature coefficient is ±130 ppm/°C. VOUT(E) Example of S-1317A10 typ. product −40 +25 +0.13 mV/°C VOUT [V] *1. V OUT(E) is the value of the output voltage measured at Ta = +25°C. +85 Ta [°C] −0.13 mV/°C Figure 8 A change in the temperature of the output voltage [mV/°C] is calculated using the following equation. ΔVOUT ΔTa []mV/°C *1 = VOUT(S) []V *2 × ΔVOUT ΔTa•VOUT []ppm/°C *3 ÷ 1000 *1. Change in temperat ure of output voltage *2. Set output voltage *3. Output voltage tem perature coefficient

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series  Precautions

  • Generally, when a voltage regulator is used under the conditi on that the load current value is small (1 μA or less), the output voltage may increase due to the leakage current of an output transistor.
  • Generally, when a voltage regulator is used under the condition that the temperature is hi gh, the output voltage may increase due to the leakage current of an output transistor.
  • Generally, when a voltage regulator is used under the condition t hat the impedance of the pow er supply is high, an oscillation may occur. Perform thorough evaluation including t he temperature characteristics with an actual application to select CIN.
  • Generally, in a voltage regulator, an oscillation may o ccur depending on the selection of the external parts. The following use conditions are recommended in the S-1317 Se ries, however, perform thor ough evaluation including the temperature characteristics with an actual application to select CIN and CL. Input capacitor (C IN): A ceramic capacitor with capacitance of 1.0 μF or more is recommended. Output capacitor (CL): A ceramic capacitor with capacitance of 1.0 μF to 100 μF is recommended.
  • Generally, in a voltage regulator, t he values of an overshoot and an unders hoot in the output voltage vary depending on the variation factors of input voltage start-up, input voltage fluctuation and load fluctuation etc., or the capacitance of CIN or CL and the value of the equivalent se ries resistance (ESR), which ma y cause a problem to the stable operation. Perform thorough evaluation including the temperature characteristics with an actual application to select CIN and CL.
  • Generally, in a voltage regulator, if the VOUT pin is steeply shorted wi th GND, a negative voltage exceeding the absolute maximum ratings may occur in the VOUT pin due to resonance phenomenon of the inductance and the capacitance including C L on the application. The resonance phenomenon is expected to be weakened by inserting a series resistor into the resonance pat h, and the negative voltage is expected to be limited by inserting a protection diode between the VOUT pin and the VSS pin.
  • Make sure of the conditions for the input voltage, output voltage and the load current so t hat the internal loss does not exceed the power dissipation.
  • Do not apply an electrostatic discharge to this IC that ex ceeds the performance ratings of the built-in electrostatic protection circuit.
  • When considering the output curr ent value that the IC is able to output, make sure of the output cu rrent value specified in Table 7 in " Electrical Characteristics" and footnote *5 of the table.
  • Wiring patterns on the application related to the VIN pin, the VOUT pin and the VSS pin should be designed so that the impedance is low. When mounting C IN between the VIN pin and the VSS pin and C L between the VOUT pin and the VSS pin, connect the capacitors as close as possible to the respective destination pins of the IC.
  • In the package equipped with heat sink of backside, mount the heat sink firml y. Since the heat radiation differs according to the condition of the app lication, perform thorough evaluation with an actual application to confirm no problems happen.
  • SII Semiconductor Corporation claims no responsibility for any disputes arising out of or in connection with any infringement by products including this IC of patents owned by a third party.

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00  Characteristics (Typical Data) 1. Output voltage vs. Output current (When load current increases) (Ta = +25°C) 1. 1 V OUT = 1.0 V 1. 2 V OUT = 2.5 V 0.6 0.2 0.8 0.4 0.0 1.0 1.2 VOUT [V] IOUT [mA] 100 200 300 400 5000 VIN = 1.3 V VIN = 1.5 V VIN = 2.0 V VIN = 3.0 V VIN = 5.5 V 1.5 0.5 2.0 1.0 0.0 2.5 3.0 VOUT [V] IOUT [mA] 100 200 300 400 5000 VIN = 2.8 V VIN = 3.0 V VIN = 3.5 V VIN = 4.5 V VIN = 5.5 V 1. 3 V OUT = 3.5 V 0.0 4.0 VOUT [V] IOUT [mA] 100 200 300 400 5000 3.5 3.0 2.5 2.0 1.5 1.0 0.5 VIN = 3.8 V VIN = 4.0 V VIN = 4.5 V VIN = 5.5 V Remark In determining the output current, attention should be paid to the following. 1. The minimum output current value and footnote *5 of Table 7 in " Electrical Characteristics" 2. Power dissipation 2. Output voltage vs. Input voltage (Ta = +25°C) 2. 1 V OUT = 1.0 V 2. 2 V OUT = 2.5 V 0.9 0.7 1.0 0.8 0.6 1.1 1.2 VOUT [V] VIN [V] IOUT = 1 mA IOUT = 10 mA IOUT = 50 mA IOUT = 100 mA 2.0 2.7 2.6 2.5 2.4 2.3 2.2 2.1 VOUT [V] VIN [V] IOUT = 1 mA IOUT = 10 mA IOUT = 50 mA IOUT = 100 mA 2. 3 V OUT = 3.5 V 3.0 3.7 3.6 3.5 3.4 3.3 3.2 3.1 VOUT [V] VIN [V] IOUT = 1 mA IOUT = 10 mA IOUT = 50 mA IOUT = 100 mA

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series 3. Dropout voltage vs. Output current 3. 1 V OUT = 1.0 V 3. 2 V OUT = 2.5 V 1000 Vdrop [V] IOUT [mA] 80 60 40 20 0.0 1.2 1.0 0.8 0.6 0.4 0.2 Ta = +85C Ta = +25C Ta = 40C 1000 Vdrop [V] IOUT [mA] 80 60 40 20 0.00 0.40 0.35 0.30 0.25 0.20 0.15 0.10 0.05 Ta = +85C Ta = +25C Ta = 40C 3. 3 V OUT = 3.5 V 1000 Vdrop [V] IOUT [mA] 80 60 40 20 0.00 0.40 0.35 0.30 0.25 0.20 0.15 0.10 0.05 Ta = +85C Ta = +25C Ta = 40C 4. Dropout voltage vs. Set output voltage 3.51.0 Vdrop [V] VOUT(S) [V] 3.0 2.5 2.0 1.5 0.0 1.2 1.0 0.8 0.6 0.4 0.2 IOUT = 0.1 mA IOUT = 50 mA IOUT = 100 mA IOUT = 10 mA IOUT = 1 mA

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00 5. Output voltage vs. Ambient temperature 5. 1 V OUT = 1.0 V 5. 2 V OUT = 2.5 V 1.10 VOUT [V] −40 8575 50 25 0−25 Ta [°C] 0.90 1.05 1.00 0.95 2.70 VOUT [V] −40 8575 50 25 0−25 Ta [°C] 2.30 2.60 2.50 2.40 5. 3 V OUT = 3.5 V 3.80 VOUT [V] −40 8575 50 25 0−25 Ta [°C] 3.20 3.50 3.30 3.60 3.40 3.70 6. Current consumption vs. Input voltage 6. 1 V OUT = 1.0 V 6. 2 V OUT = 2.5 V 0.0 0.7 0.6 0.5 0.4 0.3 0.2 0.1 ISS1 [A] VIN [V] Ta = +85C Ta = +25C Ta = 40C 0.0 0.7 0.6 0.5 0.4 0.3 0.2 0.1 ISS1 [A] VIN [V] Ta = +85C Ta = +25C Ta = 40C 6. 3 V OUT = 3.5 V 0.0 0.7 0.6 0.5 0.4 0.3 0.2 0.1 ISS1 [A] VIN [V] Ta = +85C Ta = +25C Ta = 40C

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series 7. Current consumption vs. Ambient temperature 7. 1 V OUT = 1.0 V 7. 2 V OUT = 2.5 V 0.0 0.7 0.6 0.5 0.4 0.3 0.2 0.1 ISS1 [A] −40 8575 50 25 0−25 Ta [C] VIN = 2.0 V VIN = 5.5 V 0.0 0.7 0.6 0.5 0.4 0.3 0.2 0.1 ISS1 [A] −40 8575 50 25 0−25 Ta [C] VIN = 3.5 V VIN = 5.5 V 7. 3 V OUT = 3.5 V 0.0 0.7 0.6 0.5 0.4 0.3 0.2 0.1 ISS1 [A] −40 8575 50 25 0−25 Ta [C] VIN = 4.5 V VIN = 5.5 V 8. Current consumption vs. Output current 8. 1 V OUT = 1.0 V 8. 2 V OUT = 2.5 V 1000 IOUT [mA] 80 60 40 20 ISS1 [A] VIN = 2.0 V VIN = 5.5 V 1000 IOUT [mA] 80 60 40 20 ISS1 [A] VIN = 3.5 V VIN = 5.5 V 8. 3 V OUT = 3.5 V 1000 IOUT [mA] 80 60 40 20 ISS1 [A] VIN = 4.5 V VIN = 5.5 V

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00  Reference Data 1. Characteristics of input transient response (Ta = +25°C) 1. 1 V OUT = 1.0 V IOUT = 1 mA, CIN = CL = 1 μF, VIN = 2.0 V ↔ 3.0 V, tr = tf = 5.0 μs IOUT = 50 mA, CIN = CL = 1 μF, VIN = 2.0 V ↔ 3.0 V, tr = tf = 5.0 μs t [s] VIN [V] 1.5 4.0 0.0 1200−200 0 200 600400 800 1000 0.7 1.4 3.5 1.3 3.0 1.2 2.5 1.1 2.0 1.0 1.5 0.9 1.0 0.8 0.5 VOUT [V] VIN VOUT t [s] VIN [V] 1.5 4.0 0.0 1200−200 0 200 600400 800 1000 0.7 1.4 3.5 1.3 3.0 1.2 2.5 1.1 2.0 1.0 1.5 0.9 1.0 0.8 0.5 VOUT [V] VOUT VIN 1. 2 V OUT = 2.5 V IOUT = 1 mA, CIN = CL = 1 μF, VIN = 3.5 V ↔ 4.5 V, tr = tf = 5.0 μs IOUT = 50 mA, CIN = CL = 1 μF, VIN = 3.5 V ↔ 4.5 V, tr = tf = 5.0 μs t [s] VIN [V] 3.0 5.5 1.5 1200−200 0 200 600400 800 1000 2.2 2.9 5.0 2.8 4.5 2.7 4.0 2.6 3.5 2.5 3.0 2.4 2.5 2.3 2.0 VOUT [V] VOUT VIN t [s] VIN [V] 3.0 5.5 1.5 1200−200 0 200 600400 800 1000 2.2 2.9 5.0 2.8 4.5 2.7 4.0 2.6 3.5 2.5 3.0 2.4 2.5 2.3 2.0 VOUT [V] VOUT VIN 1. 3 V OUT = 3.5 V IOUT = 1 mA, CIN = CL = 1 μF, VIN = 4.5 V ↔ 5.5 V, tr = tf = 5.0 μs IOUT = 50 mA, CIN = CL = 1 μF, VIN = 4.5 V ↔ 5.5 V, tr = tf = 5.0 μs t [s] VIN [V] 4.0 6.5 2.5 1200−200 0 200 600400 800 1000 3.2 3.9 6.0 3.8 5.5 3.7 5.0 3.6 4.5 3.5 4.0 3.4 3.5 3.3 3.0 VOUT [V] VOUT VIN t [s] VIN [V] 4.0 6.5 2.5 1200−200 0 200 600400 800 1000 3.2 3.9 6.0 3.8 5.5 3.7 5.0 3.6 4.5 3.5 4.0 3.4 3.5 3.3 3.0 VOUT [V] VOUT VIN

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series 2. Characteristics of load transient response (Ta = +25°C) 2. 1 V OUT = 1.0 V VIN = 2.0 V, CIN = CL = 1 μF, IOUT = 1 mA ↔ 10 mA, tr = tf = 5.0 μs V IN = 2.0 V, CIN = CL = 1 μF, IOUT = 10 mA ↔ 50 mA, tr = tf = 5.0 μs t [s] IOUT [mA] 1.5 75 125 1200200 0 200 600400 800 1000 0.7 1.4 50 1.3 25 1.2 0 1.1 25 1.0 50 0.9 75 0.8 100 VOUT [V] IOUT VOUT t [s] IOUT [mA] 1.5 75 125 1200200 0 200 600400 800 1000 0.7 1.4 50 1.3 25 1.2 0 1.1 25 1.0 50 0.9 75 0.8 100 VOUT [V] IOUT VOUT 2. 2 V OUT = 2.5 V VIN = 3.5 V, CIN = CL = 1 μF, IOUT = 1 mA ↔ 10 mA, tr = tf = 5.0 μs V IN = 3.5 V, CIN = CL = 1 μF, IOUT = 10 mA ↔ 50 mA, tr = tf = 5.0 μs t [s] IOUT [mA] 3.0 75 125 600100 0 100 300200 400 500 2.2 2.9 50 2.8 25 2.7 0 2.6 25 2.5 50 2.4 75 2.3 100 VOUT [V] IOUT VOUT t [s] IOUT [mA] 125 25 50 75 100 VOUT [V] 3.0 600100 0 100 300200 400 500 2.2 2.9 2.8 2.7 2.6 2.5 2.4 2.3 IOUT VOUT 2. 3 V OUT = 3.5 V VIN = 4.5 V, CIN = CL = 1 μF, IOUT = 1 mA ↔ 10 mA, tr = tf = 5.0 μs VIN = 4.5 V, CIN = CL = 1 μF, IOUT = 10 mA ↔ 50 mA, tr = tf = 5.0 μs t [s] IOUT [mA] 4.0 75 −125 2400−400 0 400 1200800 1600 2000 3.2 3.9 50 3.8 25 3.7 0 3.6 −25 3.5 −50 3.4 −75 3.3 −100 VOUT [V] IOUT VOUT t [s] IOUT [mA] −125 −25 −50 −75 −100 VOUT [V] 4800−800 0 800 24001600 3200 4000 4.0 3.2 3.9 3.8 3.7 3.6 3.5 3.4 3.3 IOUT VOUT

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION S-1317 Series Rev.1.0_00 3. Ripple rejection (Ta = +25°C) 3. 1 V OUT = 1.0 V VIN = 2.0 V, CL = 1.0 μF 3. 2 V OUT = 2.5 V VIN = 3.5 V, CL = 1.0 μF Ripple Rejection [dB] Frequency [Hz] 100 1k 10k10 1M100k 100 IOUT = 50 mA IOUT = 100 mA IOUT = 10 mA IOUT = 1 mA Ripple Rejection [dB] Frequency [Hz] 100 1k 10k10 1M100k 100 IOUT = 50 mA IOUT = 100 mA IOUT = 10 mA IOUT = 1 mA 3. 3 V OUT = 3.5 V VIN = 4.5 V, CL = 1.0 μF Ripple Rejection [dB] Frequency [Hz] 100 1k 10k10 1M100k 100 IOUT = 50 mA IOUT = 100 mA IOUT = 10 mA IOUT = 1 mA 4. Example of equivalent series resistan ce vs. Output current characteristics (Ta = +25°C) 100 0.01 100 IOUT [mA] RESR [Ω] CIN = CL = 1.0 μF Stable CIN VIN VSS CL RESR S-1317 Series VOUT *1. CL: TDK Corporation C3216X7R1H105K160AB Figure 10 Figure 11

5.5 V INPUT, 100 mA CMOS VOLTAGE REGULATOR WITH 0.35 μA SUPER LOW CURRENT CONSUMPTION Rev.1.0_00 S-1317 Series  Power Dissipation 0 25 50 75 100 125 150 1750.0 0.2 0.4 0.6 0.8 1.0 Ambient temperature (Ta) [C] Power dissipation (PD) [W] Tj = 125C max. SOT-23-5 B A 0 25 50 75 100 125 150 1750.0 0.2 0.4 0.6 0.8 1.0 Ambient temperature (Ta) [C] Power dissipation (PD) [W] Tj = 125C max. HSNT-4(1010) B A Board Power Dissipation (PD) Board Power Dissipation (PD) A 0.52 W A 0.26 W B 0.63 W B 0.32 W C − C − D − D − E − E −

(1) (2) Board A Item Specification Size [mm] 114.3 x 76.2 x t1.6 Material FR-4 Number of copper foil layer 2 Copper foil layer [mm] Land pattern and wiring for testing: t0.070 74.2 x 74.2 x t0.070 74.2 x 74.2 x t0.070 Thermal via - Board B Item Specification Size [mm] 114.3 x 76.2 x t1.6 Thermal via - Material FR-4 Number of copper foil layer 4 Copper foil layer [mm] Land pattern and wiring for testing: t0.070 74.2 x 74.2 x t0.035 74.2 x 74.2 x t0.035 IC Mount Area SOT-23-3/5/6 Test Board No. SOT23x-A-Board-SD-1.0 SII Semiconductor Corporation

(1) (2) Thermal via - Material FR-4 Board A Item Specification Size [mm] 114.3 x 76.2 x t1.6 Number of copper foil layer 2 Copper foil layer [mm] Land pattern and wiring for testing: t0.070 74.2 x 74.2 x t0.070 Land pattern and wiring for testing: t0.070 74.2 x 74.2 x t0.035 74.2 x 74.2 x t0.035 74.2 x 74.2 x t0.070 Size [mm] 114.3 x 76.2 x t1.6 Board B Item Specification Thermal via - Material FR-4 Number of copper foil layer 4 Copper foil layer [mm] IC Mount Area HSNT-4(1010) Test Board No. HSNT4-B-Board-SD-1.0 SII Semiconductor Corporation

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