S-1111B21MC-NYGTFG [SII]

HIGH RIPPLE-REJECTION LOW DROPOUT; 高纹波抑制率低压差
S-1111B21MC-NYGTFG
型号: S-1111B21MC-NYGTFG
厂家: SEIKO INSTRUMENTS INC    SEIKO INSTRUMENTS INC
描述:

HIGH RIPPLE-REJECTION LOW DROPOUT
高纹波抑制率低压差

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Rev.4.1_00  
HIGH RIPPLE-REJECTION LOW DROPOUT  
CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
The S-1111/1121 Series is a positive voltage  
regulator with a low dropout voltage, high output  
voltage accuracy, and low current consumption  
developed based on CMOS technology.  
A built-in low on-resistance transistor provides a  
low dropout voltage and large output current, and a  
built-in overcurrent protector prevents the load  
current from exceeding the current capacitance of  
the output transistor. An ON/OFF circuit ensures a  
long battery life, and a small SOT-23-5 package  
realize high-density mounting. The lineup includes  
the S-1111 and S-1121 Series, which differ in pin  
configuration.  
„ Features  
1.5 V to 5.5 V, selectable in 0.1 V steps.  
High-accuracy output voltage: ±1.0%  
Output voltage:  
Low dropout voltage:  
200 mV typ. (3.0 V output product, IOUT = 100 mA)  
During operation: 35 μA typ., 65 μA max.  
During shutdown: 0.1 μA typ., 1.0 μA max.  
High peak current capability: 150 mA output is possible (at VIN VOUT(S) + 1.0 V)*1  
Low current consumption:  
Ensures long battery life.  
70 dB typ. (at 1.0 kHz)  
Overcurrent of output transistor can be restricted.  
SOT-23-5  
Built-in ON/OFF circuit:  
High ripple rejection:  
Built-in overcurrent protector:  
Small package:  
Lead-free products  
*1. Attention should be paid to the power dissipation of the package when the output current is large.  
„ Applications  
Power supply for battery-powered devices  
Power supply for personal communication devices  
Power supply for home electric/electronic appliances  
Power supply for cellular phones  
„ Package  
Package Name  
Drawing Code  
Tape  
Package  
MP005-A  
Reel  
MP005-A  
SOT-23-5  
MP005-A  
1
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
VOUT  
„ Block Diagram  
*1  
VIN  
Overcurrent  
protector  
+
ON/OFF  
ON/OFF  
circuit  
Reference  
voltage circuit  
VSS  
*1. Parasitic diode  
Figure 1  
2
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Product Name Structure  
The product types and output voltage for the S-1111/1121 Series can be selected at the user’s request.  
Refer to the “Product name” for the meanings of the characters in the product name and “Product name  
list” for the full product names.  
1. Product name (S-1111 Series)  
S-1111  
x
xx  
MC  
xxx  
TF  
G
IC direction in tape specifications*1  
Product name (abbreviation)*2  
Package name (abbreviation)  
MC: SOT-23-5  
Output voltage  
15 to 55  
(e.g., when the output voltage is 1.5 V,  
it is expressed as 15.)  
Product type*3  
A: ON/OFF pin negative logic  
B: ON/OFF pin positive logic  
*1. Refer to the taping specifications at the end of this book.  
*2. Refer to the “Product name list”.  
*3. Refer to 3. Shutdown (ON/OFF pin) in the “Operation”.  
3
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
2. Product name list (S-1111 Series)  
Table 1  
Output Voltage  
1.5V±1.0%  
1.6V±1.0%  
1.7V±1.0%  
1.8V±1.0%  
1.9V±1.0%  
2.0V±1.0%  
2.1V±1.0%  
2.2V±1.0%  
2.3V±1.0%  
2.4V±1.0%  
2.5V±1.0%  
2.6V±1.0%  
2.7V±1.0%  
2.8V±1.0%  
2.9V±1.0%  
3.0V±1.0%  
3.1V±1.0%  
3.2V±1.0%  
3.3V±1.0%  
3.4V±1.0%  
3.5V±1.0%  
3.6V±1.0%  
3.7V±1.0%  
3.8V±1.0%  
3.9V±1.0%  
4.0V±1.0%  
4.1V±1.0%  
4.2V±1.0%  
4.3V±1.0%  
4.4V±1.0%  
4.5V±1.0%  
4.6V±1.0%  
4.7V±1.0%  
4.75V±1.0%  
4.8V±1.0%  
4.9V±1.0%  
5.0V±1.0%  
5.1V±1.0%  
5.2V±1.0%  
5.3V±1.0%  
5.4V±1.0%  
5.5V±1.0%  
SOT-23-5  
S-1111B15MC-NYATFG  
S-1111B16MC-NYBTFG  
S-1111B17MC-NYCTFG  
S-1111B18MC-NYDTFG  
S-1111B19MC-NYETFG  
S-1111B20MC-NYFTFG  
S-1111B21MC-NYGTFG  
S-1111B22MC-NYHTFG  
S-1111B23MC-NYITFG  
S-1111B24MC-NYJTFG  
S-1111B25MC-NYKTFG  
S-1111B26MC-NYLTFG  
S-1111B27MC-NYMTFG  
S-1111B28MC-NYNTFG  
S-1111B29MC-NYOTFG  
S-1111B30MC-NYPTFG  
S-1111B31MC-NYQTFG  
S-1111B32MC-NYRTFG  
S-1111B33MC-NYSTFG  
S-1111B34MC-NYTTFG  
S-1111B35MC-NYUTFG  
S-1111B36MC-NYVTFG  
S-1111B37MC-NYWTFG  
S-1111B38MC-NYXTFG  
S-1111B39MC-NYYTFG  
S-1111B40MC-NYZTFG  
S-1111B41MC-NZATFG  
S-1111B42MC-NZBTFG  
S-1111B43MC-NZCTFG  
S-1111B44MC-NZDTFG  
S-1111B45MC-NZETFG  
S-1111B46MC-NZFTFG  
S-1111B47MC-NZGTFG  
S-1111B48MC-NZHTFG  
S-1111B49MC-NZITFG  
S-1111B50MC-NZJTFG  
S-1111B51MC-NZKTFG  
S-1111B52MC-NZLTFG  
S-1111B53MC-NZMTFG  
S-1111B54MC-NZNTFG  
S-1111B55MC-NZOTFG  
Remark Please contact our sales office for type A products.  
4
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
3. Product name (S-1121 Series)  
S-1121 xx MC  
x
xxx  
TF  
G
IC direction in tape specifications*1  
Product name (abbreviation)*2  
Package name (abbreviation)  
MC: SOT-23-5  
Output voltage  
15 to 55  
(e.g., when the output voltage is 1.5 V,  
it is expressed as 15.)  
Product type*3  
A: ON/OFF pin negative logic  
B: ON/OFF pin positive logic  
*1. Refer to the taping specifications at the end of this book.  
*2. Refer to the “Product name list”.  
*3. Refer to 3. Shutdown pin (ON/OFF pin) in the “Operation”.  
5
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
4. Product name list (S-1121 Series)  
Table 2  
Output Voltage  
1.5V±1.0%  
1.6V±1.0%  
1.7V±1.0%  
1.8V±1.0%  
1.9V±1.0%  
2.0V±1.0%  
2.1V±1.0%  
2.2V±1.0%  
2.3V±1.0%  
2.4V±1.0%  
2.5V±1.0%  
2.6V±1.0%  
2.7V±1.0%  
2.8V±1.0%  
2.9V±1.0%  
3.0V±1.0%  
3.1V±1.0%  
3.2V±1.0%  
3.3V±1.0%  
3.4V±1.0%  
3.5V±1.0%  
3.6V±1.0%  
3.7V±1.0%  
3.8V±1.0%  
3.9V±1.0%  
4.0V±1.0%  
4.1V±1.0%  
4.2V±1.0%  
4.3V±1.0%  
4.4V±1.0%  
4.5V±1.0%  
4.6V±1.0%  
4.7V±1.0%  
4.75V±1.0%  
4.8V±1.0%  
4.9V±1.0%  
5.0V±1.0%  
5.1V±1.0%  
5.2V±1.0%  
5.3V±1.0%  
5.4V±1.0%  
5.5V±1.0%  
SOT-23-5  
S-1121B15MC-N2ATFG  
S-1121B16MC-N2BTFG  
S-1121B17MC-N2CTFG  
S-1121B18MC-N2DTFG  
S-1121B19MC-N2ETFG  
S-1121B20MC-N2FTFG  
S-1121B21MC-N2GTFG  
S-1121B22MC-N2HTFG  
S-1121B23MC-N2ITFG  
S-1121B24MC-N2JTFG  
S-1121B25MC-N2KTFG  
S-1121B26MC-N2LTFG  
S-1121B27MC-N2MTFG  
S-1121B28MC-N2NTFG  
S-1121B29MC-N2OTFG  
S-1121B30MC-N2PTFG  
S-1121B31MC-N2QTFG  
S-1121B32MC-N2RTFG  
S-1121B33MC-N2STFG  
S-1121B34MC-N2TTFG  
S-1121B35MC-N2UTFG  
S-1121B36MC-N2VTFG  
S-1121B37MC-N2WTFG  
S-1121B38MC-N2XTFG  
S-1121B39MC-N2YTFG  
S-1121B40MC-N2ZTFG  
S-1121B41MC-N3ATFG  
S-1121B42MC-N3BTFG  
S-1121B43MC-N3CTFG  
S-1121B44MC-N3DTFG  
S-1121B45MC-N3ETFG  
S-1121B46MC-N3FTFG  
S-1121B47MC-N3GTFG  
S-1121B4HMC-N3PTFG  
S-1121B48MC-N3HTFG  
S-1121B49MC-N3ITFG  
S-1121B50MC-N3JTFG  
S-1121B51MC-N3KTFG  
S-1121B52MC-N3LTFG  
S-1121B53MC-N3MTFG  
S-1121B54MC-N3NTFG  
S-1121B55MC-N3OTFG  
Remark Please contact our sales office for type A products.  
6
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Pin Configuration  
Table 3  
SOT-23-5  
Top view  
(S-1111 Series)  
Description  
Input voltage pin  
GND pin  
Shutdown pin  
No connection  
Output voltage pin  
Pin No.  
Symbol  
VIN  
VSS  
5
4
1
2
3
4
5
ON/OFF  
NC*1  
VOUT  
*1. The NC pin is electrically open.  
The NC pin can be connected to VIN or VSS.  
1
2
3
Table 4  
(S-1121 Series)  
Description  
Output voltage pin  
GND pin  
Input voltage pin  
Shutdown pin  
No connection  
Pin No.  
Symbol  
VOUT  
VSS  
1
2
3
4
5
Figure 2  
VIN  
ON/OFF  
NC*1  
*1. The NC pin is electrically open.  
The NC pin can be connected to VIN or VSS.  
7
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Absolute Maximum Ratings  
Table 5  
(Ta = 25 °C unless otherwise specified)  
Item  
Symbol  
VIN  
VON/OFF  
VOUT  
Absolute Maximum Rating  
Unit  
V
V
Input voltage  
VSS 0.3 to VSS + 7  
VSS 0.3 to VIN + 0.3  
VSS 0.3 to VIN + 0.3  
300 (When not mounted on board)  
600*1  
Output voltage  
V
Power dissipation  
mW  
mW  
°C  
°C  
PD  
Operating ambient temperature  
Storage temperature  
Topr  
Tstg  
40 to +85  
40 to +125  
*1. When mounted on board  
[Mounted on board]  
(1) Board size : 114.3 mm × 76.2 mm × t1.6 mm  
(2) Board name : JEDEC STANDARD51-7  
Caution The absolute maximum ratings are rated values exceeding which the product could suffer  
physical damage. These values must therefore not be exceeded under any conditions.  
700  
600  
500  
400  
300  
200  
100  
0
100  
150  
50  
0
Ambient temperature (Ta) [°C]  
Figure 3 Power Dissipation of Package (When Mounted on Board)  
8
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Electrical Characteristics  
Table 6  
(Ta = 25 °C unless otherwise specified)  
Test  
Circuit  
Item  
Symbol  
VOUT(E)  
Conditions  
Min.  
Typ.  
Max.  
Unit  
VOUT(S)  
VOUT(S)  
VOUT(S)  
Output voltage*1  
VIN  
VIN  
=
VOUT(S)  
+
1.0 V, IOUT  
1.0 V  
= 30 mA  
V
1
×
0.99  
×
1.01  
Output current*2  
Dropout voltage*3  
IOUT  
=
VOUT(S)  
+
150*5  
mA  
V
3
1
1
1
1
1
Vdrop  
IOUT  
100 mA  
1.5 V  
VOUT(S)  
VOUT(S)  
VOUT(S)  
VOUT(S)  
VOUT(S)  
1.9 V  
2.4 V  
2.7 V  
3.3 V  
5.5 V  
0.60  
0.35  
0.24  
0.20  
0.17  
1.40  
0.70  
0.35  
0.30  
0.26  
2.0 V  
2.5 V  
2.8 V  
3.4 V  
V
V
V
V
ΔVOUT1  
VOUT(S)  
IOUT 30 mA  
VIN  
1.0 mA  
+ 0.5 V VIN 6.5 V,  
Line regulation  
Load regulation  
0.05  
20  
0.2  
40  
% / V  
1
1
1
2
=
=
ΔVINVOUT  
VOUT2  
ΔVOUT  
VOUT(S)  
+
1.0 V,  
80 mA  
1.0 V, IOUT  
85  
Δ
mV  
IOUT  
Output voltage  
VIN  
=
°
VOUT(S)  
Ta  
VOUT(S)  
+
=
10 mA,  
ppm  
/ °C  
±100  
temperature coefficient*4  
40  
C
°
C
ΔTaVOUT  
Current consumption  
during operation  
Current consumption  
during shutdown  
Input voltage  
VIN  
=
+
1.0 V, ON/OFF pin  
1.0 V, ON/OFF pin  
=
=
ON,  
ISS1  
35  
65  
μA  
no load  
VIN VOUT(S)  
no load  
=
+
OFF,  
ISS2  
VIN  
0.1  
1.0  
6.5  
1
2
4
2.0  
1.5  
V
V
Shutdown pin  
input voltage “H”  
Shutdown pin  
input voltage “L”  
Shutdown pin  
input current “H”  
Shutdown pin  
VSH  
VIN  
VIN  
VIN  
=
=
=
VOUT(S)  
VOUT(S)  
+
+
1.0 V, RL  
1.0 V, RL  
=
=
1.0 k  
1.0 k  
Ω
Ω
VSL  
ISH  
ISL  
0.3  
0.1  
0.1  
V
4
4
4
5
3
6.5 V, VON/OFF  
6.5 V, VON/OFF  
=
=
6.5 V  
0 V  
0.1  
0.1  
μ
A
A
VIN  
VIN  
=
=
μ
input current “L”  
VOUT(S)  
0.5 Vrms, IOUT  
VOUT(S) 1.0 V, ON/OFF pin  
0 V  
+
1.0 V, f  
=
1.0 kHz,  
RR  
Ishort  
Ripple rejection  
70  
dB  
Δ
Vrip  
VIN  
VOUT  
=
= 30 mA  
=
+
=
ON,  
Short-circuit current  
250  
mA  
=
*1. VOUT(S): Specified output voltage  
VOUT(E): Actual output voltage at the fixed load  
The output voltage when fixing IOUT(= 30 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)  
VOUT3 is the output voltage when VIN = VOUT(S) + 1.0 V and IOUT = 100 mA.  
VIN1 is the input voltage at which the output voltage becomes 98% of VOUT3 after gradually decreasing the input  
voltage.  
*4. The change in temperature [mV/°C] is calculated using the following equation.  
ΔVOUT  
ΔTa  
ΔVOUT  
ΔTa VOUT  
*2  
*3  
[
mV/°C  
]
*1 = VOUT(S)  
[
V
]
×
[
ppm/°C  
]
÷1000  
*1. The change in temperature of the output voltage  
*2. Specified output voltage  
*3. Output voltage temperature coefficient  
*5. The output current can be at least this value.  
Due to restrictions on the package power dissipation, this value may not be satisfied. Attention should be paid to the  
power dissipation of the package when the output current is large.  
This specification is guaranteed by design.  
9
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Test Circuits  
1.  
+
A
VIN  
VOUT  
VSS  
+
V
ON/OFF  
Set to  
power ON  
Figure 4  
2.  
+
A
VIN  
VOUT  
VSS  
ON/OFF  
Set to  
V
IN or GND  
Figure 5  
3.  
+
VIN  
VOUT  
A
+
V
ON/OFF  
VSS  
Set to  
power ON  
Figure 6  
4.  
VOUT  
VSS  
VIN  
+
+
RL  
A
V
ON/OFF  
Figure 7  
5.  
VIN  
VOUT  
VSS  
+
V
ON/OFF  
RL  
Set to  
Power ON  
Figure 8  
10  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Standard Circuit  
Output  
Input  
VIN  
VOUT  
*2  
*1  
ON/OFF  
CL  
CIN  
VSS  
GND  
Single GND  
*1. CIN is a capacitor for stabilizing the input.  
*2. A tantalum capacitor (2.2 μF or more) can be used.  
Figure 9  
Caution The above connection diagram and constant will not guarantee successful operation.  
Perform thorough evaluation using the actual application to set the constant.  
„ Application Conditions  
Input capacitor (CIN):  
1.0 μF or more  
Output capacitor (CL): 2.2 μF or more (tantalum capacitor)  
Caution A general series regulator may oscillate, depending on the external components selected.  
Check that no oscillation occurs with the application using the above capacitor.  
11  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Explanation of Terms  
1. Low dropout voltage regulator  
The low dropout voltage regulator is a voltage regulator whose dropout voltage is low due to its built-in  
low on-resistance transistor.  
2. Output voltage (VOUT  
)
The accuracy of the output voltage is ensured at ±1.0% under the specified conditions of fixed input  
voltage*1, fixed output current, and fixed temperature.  
*1. Differs depending the product.  
Caution If the above conditions change, the output voltage value may vary and exceed the  
accuracy range of the output voltage. Please see the electrical characteristics and  
attached characteristics data for details.  
ΔVOUT1  
ΔVIN VOUT  
3. Line regulation ⎜  
Indicates the dependency of the output voltage on the input voltage. That is, the value shows how much  
the output voltage changes due to a change in the input voltage with the output current remaining  
unchanged.  
4. Load regulation (ΔVOUT2  
)
Indicates the dependency of the output voltage on the output current. That is, the value shows how  
much the output voltage changes due to a change in the output current with the input voltage remaining  
unchanged.  
5. Dropout voltage (Vdrop  
)
Indicates the difference between the input voltage VIN1, which is the input voltage (VIN) at the point where  
the output voltage has fallen to 98% of the output voltage value VOUT3 after VIN was gradually decreased  
from VIN = VOUT(S) + 1.0 V, and the output voltage at that point (VOUT3 × 0.98).  
Vdrop = VIN1 (VOUT3 × 0.98)  
12  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
ΔVOUT  
ΔTa VOUT  
6.  
Temperatur e coefficien t of output voltage ⎜  
The shadowed area in Figure 10 is the range where VOUT varies in the operating temperature range  
when the temperature coefficient of the output voltage is ±100 ppm/°C.  
Ex. S-1111/1121B28 Typ.  
VOUT  
[V]  
+0.28 mV / °C  
*1  
VOUT(E)  
0.28 mV / °C  
40  
25  
Ta [°C]  
85  
*1.  
VOUT(E) is the value of the output voltage measured at 25°C.  
Figure 10  
A change in the temperature of the output voltage [mV/°C] is calculated using the following equation.  
ΔVOUT  
ΔTa  
ΔVOUT  
ΔTa VOUT  
*2  
*3  
[
mV/°C  
]
*1 = VOUT(S)  
[
V
]
×
[
ppm/°C  
]
÷1000  
*1. Change in temperature of output voltage  
*2. Specified output voltage  
*3. Output voltage temperature coefficient  
13  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Operation  
1. Basic operation  
Figure 11 shows the block diagram of the S-1111/1121 Series.  
The error amplifier compares the reference voltage (Vref) with Vfb, which is the output voltage resistance-  
divided by feedback resistors Rs and Rf. It supplies the output transistor with the gate voltage necessary  
to ensure a certain output voltage free of any fluctuations of input voltage and temperature.  
VIN  
*1  
Current  
supply  
Error  
amplifier  
VOUT  
+
Vref  
Rf  
Vfb  
Reference voltage  
circuit  
Rs  
VSS  
*1. Parasitic diode  
Figure 11  
2. Output transistor  
The S-1111/1121 Series uses a low on-resistance P-channel MOS FET as the output transistor.  
Be sure that VOUT does not exceed VIN + 0.3 V to prevent the voltage regulator from being damaged due  
to inverse current flowing from VOUT pin through a parasitic diode to VIN pin.  
14  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
3. Shutdown pin (ON/OFF pin)  
This pin starts and stops the regulator.  
When the ON/OFF pin is set to the shutdown level, the operation of all internal circuits stops, and the built-  
in P-channel MOS FET output transistor between the VIN pin and VOUT pin is turned off to substantially  
reduce the current consumption. The VOUT pin becomes the VSS level due to the internally divided  
resistance of several hundreds kΩ between the VOUT pin and VSS pin.  
The structure of the ON/OFF pin is as shown in Figure 12. Since the ON/OFF pin is neither pulled down  
nor pulled up internally, do not use it in the floating state. In addition, note that the current consumption  
increases if a voltage of 0.3 V to VIN – 0.3 V is applied to the ON/OFF pin. When the ON/OFF pin is not  
used, connect it to the VSS pin if the logic type is “A” and to the VIN pin if it is “B”.  
Table 7  
Logic Type  
ON/OFF Pin  
“L”: Power on  
“H”: Power off  
“L”: Power off  
“H”: Power on  
Internal Circuits  
Operating  
Stopped  
VOUT Pin Voltage  
Set value  
Current Consumption  
A
A
B
B
ISS1  
ISS2  
ISS2  
ISS1  
VSS level  
VSS level  
Set value  
Stopped  
Operating  
VIN  
ON/OFF  
VSS  
Figure 12  
„ Selection of Output Capacitor (CL)  
The S-1111/1121 Series performs phase compensation using the internal phase compensator in the IC and the  
ESR (Equivalent Series Resistance) of the output capacitor to enable stable operation independent of changes  
in the output load. Therefore, always place a capacitor (CL) of 2.2 μF or more between VOUT and VSS pins.  
For stable operation of the S-1111/1121 Series, it is essential to employ a capacitor whose ESR is within an  
optimum range. Using a capacitor whose ESR is outside the optimum range (approximately 0.5 to 5 Ω),  
whether larger or smaller, may cause an unstable output, resulting in oscillation. For this reason, a tantalum  
electrolytic capacitor is recommended.  
When a ceramic capacitor or an OS capacitor with a low ESR is used, it is necessary to connect an additional  
resistor that serves as the ESR in series with the output capacitor. The required resistance value is  
approximately 0.5 to 5 Ω, which varies depending on the usage conditions, so perform sufficient evaluation for  
selection. Ordinarily, around 1.0 Ω is recommended.  
Note that an aluminum electrolytic capacitor may increase the ESR at a low temperature, causing oscillation.  
When using this kind of capacitor, perform thorough evaluation, including evaluation of temperature  
characteristics.  
15  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Precautions  
Wiring patterns for the VIN, VOUT and GND pins should be designed so that the impedance is low.  
When mounting an output capacitor between the VOUT and VSS pins (CL) and a capacitor for stabilizing  
the input between VIN and VSS pins (CIN), the distance from the capacitors to these pins should be as  
short as possible.  
Note that the output voltage may increase when a series regulator is used at low load current (1.0 mA or  
less).  
This IC performs phase compensation by using an internal phase compensator and the ESR of an  
output capacitor. Therefore, always place a capacitor of 2.2 μF or more between VOUT and VSS pins.  
A tantalum type capacitor is recommended. Moreover, to secure stable operation of the S-1111/1121  
Series, it is necessary to employ a capacitor with an ESR within an optimum range (0.5 to 5 Ω). Using a  
capacitor whose ESR is outside the optimum range (approximately 0.5 to 5 Ω), whether larger or  
smaller, may cause an unstable output, resulting in oscillation. Perform sufficient evaluation under the  
actual usage conditions for selection, including evaluation of temperature characteristics.  
The voltage regulator may oscillate when the impedance of the power supply is high and the input  
capacitor is small or an input capacitor is not connected.  
The application conditions for the input voltage, output voltage, and load current should not exceed the  
package power dissipation.  
Do not apply an electrostatic discharge to this IC that exceeds the performance ratings of the built-in  
electrostatic protection circuit.  
In determining the output current, attention should be paid to the output current value specified in Table  
6 in the electrical characteristics and footnote *5 of the table.  
SII 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.  
16  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Characteristics (Typical Data)  
Remark The following, which describes the S-1111 Series as the typical product, shows typical data  
common to the S-1121 Series.  
(1) Output Voltage vs. Output current (when load current increases)  
S-1111B15 (Ta = 25 °C)  
S-1111B30 (Ta = 25 °C)  
2.5  
4
3.5  
3
2.5  
2
2
4.0 V  
2.0 V  
1.5  
1
6.5 V  
VIN = 1.8 V  
1.5  
0.5  
1
0.5  
0
6.5 V  
3.5 V  
2.5 V  
500  
V
IN = 3.3 V  
0
0
100  
200  
300  
400  
600  
0
100 200 300 400 500 600  
IOUT [mA]  
IOUT [mA]  
S-1111B50 (Ta = 25 °C)  
6
5
6.5 V  
4
3
2
1
0
6.0 V  
Remark In determining the output current,attention  
should be paid to the following.  
1) The minimum output current value  
and footnote *5 in the electrical  
characteristics  
5.5 V  
VIN = 5.3 V  
0
100  
200  
300  
400  
500  
600  
IOUT [mA]  
2) The package power dissipation  
(2) Output voltage vs. Input voltage  
S-1111B15 (Ta = 25 °C)  
S-1111B30 (Ta = 25 °C)  
1.6  
3.05  
50 mA  
50 mA  
IOUT = 1 mA  
IOUT = 1 mA  
3
2.95  
2.9  
1.55  
1.5  
30 mA  
30 mA  
80 mA  
80 mA  
1.45  
1.4  
2.85  
2.8  
1
1.5  
2
2.5  
3
3.5  
2.5  
3
3.5  
4
4.5  
5
VIN [V]  
VIN [V]  
S-1111B50 (Ta = 25 °C)  
5.1  
5.08  
5.06  
5.04  
5.02  
5
4.98  
4.96  
4.94  
4.92  
4.9  
IOUT = 1 mA  
30 mA  
50 mA  
80 mA  
4.5  
5
5.5  
VIN [V]  
6
6.5  
7
17  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
(3) Dropout voltage vs. Output current  
S-1111B15  
S-1111B30  
0.45  
0.4  
0.35  
0.3  
0.3  
0.25  
0.2  
25°C  
85°C  
85°C  
25°C  
0.25  
0.2  
0.15  
0.1  
0.05  
0
0.15  
0.1  
-40°C  
-40°C  
150  
0.05  
0
0
0
50  
100  
150  
200  
50  
100  
200  
IOUT [mA]  
IOUT [mA]  
S-1111B50  
0.25  
0.2  
0.15  
0.1  
85°C  
25°C  
40°C  
0.05  
0
0
50  
100  
150  
200  
IOUT [mA]  
(4) Dropout voltage vs. Set output voltage  
0.4  
150 mA  
100 mA  
0.35  
0.3  
0.25  
0.2  
0.15  
0.1  
50 mA  
30 mA  
10 mA  
0.05  
0
0
1
2
3
4
5
6
7
VOTA [V]  
18  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
(5) Output voltage vs. Ambient temperature  
S-1111B15  
S-1111B30  
1.6  
3.1  
1.55  
1.5  
3.05  
3
1.45  
2.95  
2.9  
1.4  
-40 -20  
0
20  
40  
60  
80 100  
-40 -20  
0
20  
40  
60  
80 100  
Ta [°C]  
Ta [°C]  
S-1111B50  
5.1  
5.08  
5.06  
5.04  
5.02  
5
4.98  
4.96  
4.94  
4.92  
4.9  
-40 -20  
0
20 40 60 80 100  
Ta [°C]  
(6) Current consumption vs. Input voltage  
S-1111B15  
S-1111B30  
45  
40  
35  
30  
25  
20  
15  
10  
5
45  
40  
35  
30  
25  
20  
15  
10  
5
25°C  
25°C  
85°C  
85°C  
40°C  
40°C  
0
0
0
0
2
4
6
8
2
4
6
8
VIN [V]  
VIN [V]  
S-1111B50  
45  
40  
35  
30  
25  
20  
15  
10  
5
85°C  
25°C  
40°C  
0
0
2
4
6
8
VIN [V]  
19  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
(7) Ripple rejection  
S-1111B15 (Ta = 25 °C)  
VIN = 2.5 V, COUT = 2.2 μF  
S-1111B30 (Ta = 25 °C)  
VIN = 4.0 V, COUT = 2.2 μF  
100  
80  
100  
80  
IOUT = 1 mA  
IOUT = 1 mA  
60  
40  
20  
0
60  
40  
20  
0
30 mA  
30 mA  
50 mA  
100 k  
50 mA  
100 k  
10  
100  
1 k  
10 k  
1 M  
10  
100  
1 k  
10 k  
1 M  
Frequency [Hz]  
Frequency [Hz]  
S-1111B50 (Ta = 25 °C)  
VIN = 6.0 V, COUT = 2.2 μF  
100  
80  
IOUT = 1 mA  
60  
40  
20  
0
30 mA  
50 mA  
100 k  
10  
100  
1 k  
10 k  
1 M  
Frequency [Hz]  
20  
Seiko Instruments Inc.  
HIGH RIPPLE-REJECTION LOW DROPOUT CMOS VOLTAGE REGULATOR  
S-1111/1121 Series  
Rev.4.1_00  
„ Reference Data  
(1) Input transient response characteristics  
IOUT = 30 mA, tr = tf = 5.0 μs, COUT = 2.2 μF, CIN = 0 μF  
3.025  
IOUT = 30 mA, tr = tf = 5.0 μs, COUT = 4.7 μF, CIN = 0 μF  
6
5
3.025  
6
5
3.02  
3.02  
3.015  
4
3
2
1
0
3.015  
4
3
2
1
0
VIN  
V
IN  
3.01  
3.01  
3.005  
3
VOUT  
V
OUT  
3.005  
3
2.995  
2.995  
-20  
0
20 40  
60  
80 100 120 140 160 180  
-20  
0
20 40 60 80 100 120 140 160 180  
t [μs]  
t [μs]  
(2) Load transient response characteristics  
VIN = 4.0 V, COUT = 2.2 μF, CIN = 1.0 μF,  
IOUT = 50100 mA  
VIN = 4.0 V, COUT = 4.7 μF, CIN = 1.0 μF,  
IOUT = 50100 mA  
3.2  
150  
100  
3.2  
150  
3.15  
3.15  
100  
50  
3.1  
50  
0
3.1  
3.05  
3.05  
3
IOUT  
0
IOUT  
3
-50  
-50  
-100  
-150  
2.95  
VOUT  
2.9  
-100  
2.95  
2.9  
VOUT  
-150  
-2  
0
2
4
6
8
10 12 14 16 18  
-2  
0
2
4
6
8
10 12 14 16 18  
t [μs]  
t [μs]  
(3) Shutdown pin transient response characteristics  
S-1111B15 (Ta = 25 °C)  
VIN = 2.5 V, COUT = 2.2 μF, CIN = 1.0 μF  
S-1111B30 (Ta = 25 °C)  
VIN = 4.0 V, COUT = 2.2 μF, CIN = 1.0 μF  
5
6
4
2.5  
3
2
4
2
VON/OFF  
VON/OFF  
3
2
0
1.5  
1
1
0
2
VOUT  
VOUT  
1
0
-2  
-4  
-6  
0.5  
0
-1  
-2  
-3  
-1  
-0.5  
-10  
0
10 20 30 40 50 60 70 80 90  
-10  
0
10 20 30 40 50 60 70 80 90  
t [μs]  
t [μs]  
S-1111B50 (Ta = 25 °C)  
VIN = 6.0 V, COUT = 2.2 μF, CIN = 1.0 μF  
7
6
8
6
4
2
0
VON/OFF  
5
4
3
VOUT  
2
-2  
1
-4  
-6  
-8  
0
-1  
-10  
0
10 20 30 40 50 60 70 80 90  
t [μs]  
21  
Seiko Instruments Inc.  
2.9±0.2  
1.9±0.2  
4
5
+0.1  
-0.06  
1
2
3
0.16  
0.95±0.1  
0.4±0.1  
No. MP005-A-P-SD-1.2  
TITLE  
SOT235-A-PKG Dimensions  
MP005-A-P-SD-1.2  
No.  
SCALE  
UNIT  
mm  
Seiko Instruments Inc.  
4.0±0.1(10 pitches:40.0±0.2)  
+0.1  
-0  
2.0±0.05  
0.25±0.1  
ø1.5  
+0.2  
-0  
4.0±0.1  
ø1.0  
1.4±0.2  
3.2±0.2  
3
4
2 1  
5
Feed direction  
No. MP005-A-C-SD-2.1  
TITLE  
SOT235-A-Carrier Tape  
MP005-A-C-SD-2.1  
No.  
SCALE  
UNIT  
mm  
Seiko Instruments Inc.  
12.5max.  
9.0±0.3  
Enlarged drawing in the central part  
ø13±0.2  
(60°)  
(60°)  
No. MP005-A-R-SD-1.1  
TITLE  
SOT235-A-Reel  
MP005-A-R-SD-1.1  
No.  
SCALE  
UNIT  
QTY.  
3,000  
mm  
Seiko Instruments Inc.  
·
·
The information described herein is subject to change without notice.  
Seiko Instruments Inc. is not responsible for any problems caused by circuits or diagrams described herein  
whose related industrial properties, patents, or other rights belong to third parties. The application circuit  
examples explain typical applications of the products, and do not guarantee the success of any specific  
mass-production design.  
·
·
·
When the products described herein are regulated products subject to the Wassenaar Arrangement or other  
agreements, they may not be exported without authorization from the appropriate governmental authority.  
Use of the information described herein for other purposes and/or reproduction or copying without the  
express permission of Seiko Instruments Inc. is strictly prohibited.  
The products described herein cannot be used as part of any device or equipment affecting the human  
body, such as exercise equipment, medical equipment, security systems, gas equipment, or any apparatus  
installed in airplanes and other vehicles, without prior written permission of Seiko Instruments Inc.  
Although Seiko Instruments Inc. exerts the greatest possible effort to ensure high quality and reliability, the  
failure or malfunction of semiconductor products may occur. The user of these products should therefore  
give thorough consideration to safety design, including redundancy, fire-prevention measures, and  
malfunction prevention, to prevent any accidents, fires, or community damage that may ensue.  
·

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