qSI-3000LU
Series
SI-3000LU Series
Surface-Mount, Low Current Consumption, Low Dropout Voltage Dropper Type
sFeatures
•
•
•
•
•
•
Compact surface-mount package (SOT-89-5)
Output current: 250 mA
Low current consumption lq (OFF)
≤
1
µ
A (V
C
= 0 V)
Low dropout voltage: V
DIF
≤0.5
V (at I
O
= 250 mA)
5 types of output voltages (Adj, 1.8 V, 2.5 V, 3.3 V, 5.0 V) available
Built-in dropping type overcurrent, thermal protection circuits
sApplications
• Auxiliary power supply for PC
• Battery-driven electronic equipment
sAbsolute
Maximum Ratings
Parameter
DC Input Voltage
DC Output Current
Power Dissipation
Junction Temperature
Storage Temperature
Thermal Resistance (Junction to Ambient Air)
Symbol
V
IN
I
O
P
D*1
T
j*2
T
op*2
Ratings
18
250
0.75
–40 to +135
–40 to +125
146
Unit
V
mA
W
°C
°C
°C/W
(T
a
=25°C)
θ
j-a*1
*1: When mounted on glass-epoxy board 40
×
40 mm (copper laminate area 2%)
*2: Thermal protection circuits may operate if the junction temperature exceeds 135°C
sRecommended
Operating Conditions
Parameter
Input Voltage
DC Output Current
Ambient Operating Temperature
Symbol
min.
V
IN
I
O
T
op
*2, *3
Ratings
max.
V
O
+2
*1
250
85
Unit
V
mA
°C
0
–20
*1: V
IN
(max) and I
O
(max) are restricted by the relationship P
D
= (V
IN
- V
O
)
×
I
O
.
Calculate these values referring to the reference data.
*2: Refer to the dropout voltage section.
*3: For the SI-3012LU, set the input voltage to at least 2.4 V, and secure the minimum voltage as explained in Setting DC Input Voltage,
Dropper Type Application Note.
qSI-3000LU
Series
sElectrical
Characteristics
Ratings
Parameter
Symbol
V
O
Conditions
V
DIF
Dropout Voltage
Conditions
Conditions
∆V
LINE
Line Regulation
Conditions
∆V
LOAD
Load Regulation
Conditions
Temperature Coeffi-
cient of Output Voltage
Ripple Rejection
Conditions
Quiescent Circuit
Current
OFF Circuit Current
Overcurrent Protection
Starting Current
*1
Control Voltage (Output ON)
*2
Control Voltage (Output OFF)
*2
(T
a
=25°C, V
C
=2V unless otherwise specified)
(Under
SI-3018LU
development)
(Under
(Under
development)
SI-3012LU
min.
SI-3025LU
development)
SI-3033LU
SI-3050LU
Unit
typ. max. min.
typ. max. min.
typ. max. min.
typ. max. min.
typ. max.
V
Output Voltage
1.210 1.250 1.290 1.764 1.800 1.836 2.450 2.500 2.550 3.234 3.300 3.366 4.900 5.000 5.100
V
IN
=V
O
+1V, I
O
=10mA
0.3
I
O
=100mA(V
O
=3.3V)
0.5
I
O
=250mA(V
O
=3.3V)
10
V
IN
=V
O
+1 to V
O
+5V,
I
O
=10mA( V
O
=3.3V)
20
V
IN
=V
O
+1V,
I
O
=1 to 250mA( V
O
=3.3V)
±0.3
55
10
V
IN
=2.5 to 5V, I
O
=10mA
20
0.5
V
IN
=3.3V, I
O
=10mA
0.5
V
IN
=3.3V, I
O
=10mA
0.3
I
O
=100mA
0.5
I
O
=250mA
10
V
IN
=3.3 to 5V, I
O
=10mA
40
10
V
IN
=4.5 to 8V, I
O
=10mA
40
V
IN
=5V, I
O
=0 to 250mA
±0.3
55
15
V
IN
=6 to 10V, I
O
=10mA
40
0.5
0.5
V
IN
=5V, I
O
=10mA
0.3
V
IN
=6V, I
O
=10mA
0.3
V
mV
mV
V
IN
=3.3V, I
O
=1 to 250mA V
IN
=3.3V, I
O
=0 to 250mA
±0.2
55
±0.25
T
j
=0 to 100°C
55
55
dB
V
IN
=6V, f=100 to 120H
Z
150
V
IN
=6V, I
O
=0mA,
V
C
=2V
1
V
IN
=6V, V
C
=0V
260
V
IN
=5V
2.0
0.8
40
V
C
=2V
0
V
C
=0V
–5
0.5
0
0.8
40
–5
0.5
0
2.0
0.8
40
–5
0.5
V
IN
=6V
V
V
IN
=6V, I
O
=0 to 250mA
±0.3
mV/°C
∆V
O
/∆T
a
Conditions
R
REJ
V
IN
=V
O
+1V,
V
IN
=3.3V, f=100 to 120H
Z
V
IN
=3.3V, f=100 to 120H
Z
V
IN
=5V, f=100 to 120H
Z
f=100 to 120H
Z
( V
O
=3.3V)
150
V
IN
=V
O
+1V, I
O
=0mA
V
C
=2V, R2=100kΩ
1
V
IN
=V
O
+1V, V
C
=0V
260
V
IN
=V
O
+1V
2.0
0.8
40
0
–5
0.5
0
2.0
0.8
40
–5
0.5
260
V
IN
=3.3V
2.0
150
V
IN
=3.3V, I
O
=0mA
V
C
=2V
1
V
IN
=3.3V, V
C
=0V
260
V
IN
=3.3V
150
V
IN
=3.3V, I
O
=0mA,
V
C
=2V
1
V
IN
=3.3V, V
C
=0V
260
150
V
IN
=5V, I
O
=0mA,
V
C
=2V
1
V
IN
=5V, V
C
=0V
I
q
Conditions
I
q
(OFF)
Conditions
I
S1
Conditions
V
C
, IH
V
C
, IL
I
C
, IH
Conditions
I
C
, IL
Conditions
V
O
µ
A
µ
A
mA
V
C
Pin
Control Current (Output ON)
µ
A
µ
A
V
Control Current (Output OFF)
Output OFF Voltage
*1: Is
1
is specified as the 5% drop point of output voltage V
O
on the condition that V
IN
= 3.3 V (5 V for SI-3033LU, 6 V for SI-3050LU),
and I
O
= 10 mA.
*2: Output is OFF when the output control pin (V
C
pin) is open. Each input level is equivalent to that for LS-TTL. Therefore, the device can be
driven directly by an LS-TTL circuit.
sExternal
Dimensions
4.5
±0.05
1.6
±0.05
4.2
±0.05
t
4.2
±0.05
4.2
±0.05
r
0.90
±0.1
0.1
±0.05
(Unit : mm)
0.4
±0.03
0.40
2.5
±0.05
4.3
±0.05
.0
(
φ
1
±
0.0
5
)
Pin Arrangement
q
A
DJ
w
GND
e
V
C
r
V
IN
t
V
O
Plastic Mold Package Type
Flammability: UL94V-0
Weight: Approx. 0.05g
q
w
e
0.4
±0.05
1.5
±0.05
1.5
±0.05
1.5
±0.05
0.90
±0.1
4.2
±0.05
4.7
±0.05
4.2
±0.05
qSI-3000LU
Series
sBlock
Diagram
SI-3012LU
SI-3018LU, SI-3025LU, SI-3033LU, SI-3050LU
V
IN
4
5 V
O
V
IN
4
5 V
O
V
C
3
TSD
+
–
1 A
dj
3
TSD
1 A
dj
2 GND
+
–
2 GND
REF
REF
sStandard
External Circuit
SI-3018LU, SI-3025LU, SI-3033LU, SI-3050LU
V
IN
4
V
O
5
V
DJ
1
2
GND
C
O
+
C
IN
Load
V
C
3
+
C
O
: Output capacitor (10
µ
F or larger)
The SI-3000LU series can be operated on the circuit
even if a low ESR ceramic capacitor is used as the output
capacitor.
C
IN
: Input capacitor (0.1 to 10
µ
F)
This capacitor is required in the case of an inductive input
line or long wiring.
Settings for SI-3012LU output voltage (recommended voltage:
1.5 V to 15 V)
R1 and R2: Resistors for output setting
The output voltage can be set by connecting R1 and R2
•
SI-3012LU
V
IN
C
IN
4
3
1
2
GND
V
C
R
2
C
O
5
V
O
R
1
as shown in the diagram on the left.
R2: 100 kΩ is recommended
R1=(V
O
–V
ADJ
)/(V
ADJ
/R2)
+
V
IN
+
Load
sReference
Data
Copper Laminate Area vs Power Dissipation
T
j
=100°C PWB size 40×40
1
Ta=25°C
0.9
• A monolithic IC is mounted. The inner frame stage is connected
to the GND pin (pin 2). Therefore, enlarging the copper lami-
nate area leading to the GND pin achieves a heat radiation
effect.
• How to calculate the junction temperature
Measure the temperature (T
C
) of the GND pin (pin 2) lead
section using a thermistor, etc. Substitute this value in the
following formula and calculate the junction temperature.
T
j
=P
D
×θ
j–c+Tc (
θ
j–c=5
°
C/W)
100
1000
2
Ta=40°C
Ta=60°C
Ta=85°C
Power Dissipation P
D
(W)
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
10
Copper Laminate Area (mm )
qSI-3000LU
Series
sTypical
Characteristics of SI-3033LU
(T
a
=25°C)
I
O
vs. V
DIF
Characteristics
0.6
Output Voltage Characteristics
5
Line Regulation
3.34
l
O
=0mA
0.5
Dropout Voltage V
DIF
(V)
4
3.32
l
O
=0mA
0.4
Output Voltage V
O
(V)
Output Voltage V
O
(V)
3.30
3
0.3
3.28
l
O
=250mA
3.26
2
l
O
=250mA
1
0.2
0.1
3.24
0
50
100
150
200
250
300
3.22
0
2
4
6
8
10
0
4
6
8
10
Output Current I
O
(mA)
Input Voltage V
IN
(V)
Input Voltage V
IN
(V)
Load Regulation
3.34
Output ON/OFF Control
5
Overcurrent Protection Characteristics
5
3.32
Dropout Voltage V
DIF
(V)
3.30
8V
3.28
6V
3.26
5V
Output Voltage V
O
(V)
3
V
IN
=5V
2
Output Voltage V
O
(V)
V
IN
=3.8V
4
4
3
V
IN
=3.8V
2
5V
3.24
1
1
8, 10V
3.22
0
50
100
150
200
250
300
0
0
0.5
1.0
1.5
2.0
2.5
3.0
0
0
100
200
300
400
Output Current I
O
(mA)
Output Control Voltage V
C
(V)
Output Current I
O
(mA)