NCP562, NCV562, NCP563,
NCV563
80 mA CMOS Low Iq
Low-Dropout Voltage
Regulator
This series of fixed output low−dropout linear regulators are
designed for handheld communication equipment and portable battery
powered applications which require low quiescent. This series
features an ultra−low quiescent current of 2.5
mA.
Each device
contains a voltage reference unit, an error amplifier, a PMOS power
transistor, resistors for setting output voltage, current limit, and
temperature limit protection circuits. The NCP562 series provides an
enable pin for ON/OFF control.
The NCP562/NCP563 has been designed to be used with low cost
ceramic capacitors and requires a minimum output capacitor of 0.1
mF.
The device is housed in the micro−miniature SC82−AB surface mount
package. Standard voltage versions are 1.5, 1.8, 2.1, 2.5, 2.7, 2.8, 3.0,
3.3, 3.5 and 5.0 V. Other voltages are available in 100 mV steps.
Features
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4
1
SC82−AB (SC70−4)
SQ SUFFIX
CASE 419C
PIN CONNECTIONS &
MARKING DIAGRAMS
•
•
•
•
•
•
Low Quiescent Current of 2.5
mA
Typical
Low Output Voltage Option
Output Voltage Accuracy of 2.0%
Temperature Range of −40°C to 85°C
NCP562 Provides an Enable Pin
NCV Prefix for Automotive and Other Applications Requiring
Unique Site and Control Change Requirements; AEC−Q100
Qualified and PPAP Capable
•
These Devices are Pb−Free, Halogen Free/BFR Free and are RoHS
Compliant
Typical Applications
GND 1
xxxM
G
G
V
in
2
4 Enable
3 V
out
(NCP562 Top View)
GND 1
xxxM
G
G
4 N/C
V
in
2
3 V
out
•
Battery Powered Instruments
•
Hand−Held Instruments
•
Camcorders and Cameras
(NCP563 Top View)
xxx
M
G
= Specific Device Code
= Month Code*
= Pb−Free Package
(Note: Microdot may be in either location)
*Date Code orientation and/or position and
underbar may vary depending upon manu-
facturing location.
ORDERING INFORMATION
See detailed ordering and shipping information in the package
dimensions section on page 7 of this data sheet.
©
Semiconductor Components Industries, LLC, 2015
1
July, 2015 − Rev. 15
Publication Order Number:
NCP562/D
NCP562, NCV562, NCP563, NCV563
ON
GND Enable
OFF
Input
V
in
C1
+
V
out
+
C2
Output
This device contains 28 active transistors
Figure 1. NCP562 Typical Application Diagram
GND
Input
V
in
C1
+
V
out
+
C2
N/C
Output
This device contains 28 active transistors
Figure 2. NCP563 Typical Application Diagram
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PIN FUNCTION DESCRIPTION
NCP562
1
2
3
4
NCP563
1
2
3
Pin Name
GND
Vin
Description
Power supply ground.
Positive power supply input voltage.
Regulated output voltage.
Vout
−
4
Enable
N/C
This input is used to place the device into low−power standby. When this input is pulled low, the
device is disabled. If this function is not used, Enable should be connected to Vin.
No internal connection.
−
MAXIMUM RATINGS
Input Voltage
Rating
Symbol
V
in
Value
6.0
Unit
V
V
V
Enable Voltage (NCP562 ONLY)
Output Voltage
Enable
V
out
−0.3 to V
in
+0.3
−0.3 to V
in
+0.3
Power Dissipation and Thermal Characteristics
Power Dissipation
Thermal Resistance, Junction−to−Ambient
Operating Junction Temperature
Operating Ambient Temperature
Storage Temperature
P
D
R
qJA
T
J
Internally Limited
400
+150
W
°C/W
°C
°C
°C
T
A
−40 to +85
T
stg
−55 to +150
Stresses exceeding those listed in the Maximum Ratings table may damage the device. If any of these limits are exceeded, device functionality
should not be assumed, damage may occur and reliability may be affected.
1. This device series contains ESD protection and exceeds the following tests:
Human Body Model 2000 V per MIL−STD−883, Method 3015
Machine Model Method 200 V
2. Latch up capability (85°C)
"100
mA DC with trigger voltage.
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NCP562, NCV562, NCP563, NCV563
ELECTRICAL CHARACTERISTICS
(V
in
= V
out(nom.)
+ 1.0 V, V
enable
= V
in
, C
in
= 1.0
mF,
C
out
= 1.0
mF,
T
J
= 25°C, unless otherwise noted.)
Characteristic
Output Voltage (T
A
= 25°C, I
out
= 1.0 mA)
1.5 V
1.8 V
2.1 V
2.5 V
2.7 V
2.8 V
3.0 V
3.3 V
3.5 V
5.0 V
Line Regulation
1.5 V−4.4 V (V
in
= V
o(nom.)
+ 1.0 V to 6.0 V
4.5 V−5.0 V (V
in
= 5.5 V to 6.0 V)
Load Regulation (I
out
= 10 mA to 80 mA)
Output Current (V
out
= (V
out
at I
out
= 80 mA) −3.0%)
1.5 V to 3.9 V (V
in
= V
out(nom.)
+ 2.0 V)
4.0 V−5.0 V (V
in
= 6.0 V)
Dropout Voltage (T
A
= −40°C to 85°C, I
out
= 80 mA, Measured at
V
out
−3.0%)
1.5 V−1.7 V
1.8 V−2.4 V
2.5 V−2.6 V
2.7 V−2.9 V
3.0 V−3.2 V
3.3 V−4.9 V
5.0 V
Quiescent Current
(Enable Input = 0 V)
(Enable Input = V
in
, I
out
= 1.0 mA to I
o(nom.)
)
Output Short Circuit Current
1.5 V to 3.9 V (V
in
= V
nom
+ 2.0 V)
4.0 V−5.0 V (V
in
= 6.0 V)
Output Voltage Noise (f = 100 Hz to 100 kHz, V
out
= 3.0 V)
Enable Input Threshold Voltage (NCP562 ONLY)
(Voltage Increasing, Output Turns On, Logic High)
(Voltage Decreasing, Output Turns Off, Logic Low)
Output Voltage Temperature Coefficient
3. Maximum package power dissipation limits must be observed.
T
*T
A
PD
+
J(max)
R
qJA
4. Low duty cycle pulse techniques are used during testing to maintain the junction temperature as close to ambient as possible.
Symbol
V
out
1.455
1.746
2.037
2.425
2.646
2.744
2.940
3.234
3.43
4.9
Reg
line
−
−
Reg
load
I
o(nom.)
80
80
V
in
−V
out
−
−
−
−
−
−
−
I
Q
−
−
I
out(max)
150
150
V
n
V
th(en)
1.3
−
T
C
−
−
−
"100
−
0.3
−
ppm/°C
−
300
300
100
600
600
−
mVrms
V
0.1
2.5
1.0
6.0
mA
550
400
250
230
200
190
140
800
550
400
400
350
350
250
mA
280
280
−
−
mV
−
10
10
20
20
20
40
mV
mA
1.5
1.8
2.1
2.5
2.7
2.8
3.0
3.3
3.5
5.0
1.545
1.854
2.163
2.575
2.754
2.856
3.060
3.366
3.57
5.1
mV
Min
Typ
Max
Unit
V
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NCP562, NCV562, NCP563, NCV563
2.9
I
Q
, QUIESCENT CURRENT (mA)
I
Q
, QUIESCENT CURRENT (mA)
2.7
2.5
2.3
2.1
1.9
1.7
−60
V
IN
= 4.0 V
V
OUT
= 3.0 V
I
OUT
= 0 mA
3
2.5
2
1.5
1
0.5
0
−40
−20
0
20
40
60
80
100
0
1
2
3
4
5
6
T, TEMPERATURE (°C)
V
IN
, INPUT VOLTAGE (V)
V
OUT
= 3.0 V
Figure 3. Quiescent Current versus Temperature
Figure 4. Quiescent Current versus Input
Voltage
3.5
V
OUT
, OUTPUT VOLTAGE (V)
3
I
OUT
= 30 mA
2.5
2
1.5
1
0.5
0
0
1
2
3
4
5
6
3.020
V
OUT
, OUTPUT VOLTAGE (V)
3.015
V
IN
= 6.0 V
3.010
3.005
3.000
2.995
2.990
−60
V
OUT(nom)
= 3.0 V
I
OUT
= 10 mA
−40
−20
0
20
40
V
IN
= 4.0 V
60
80
100
T, TEMPERATURE (°C)
V
IN
, INPUT VOLTAGE (V)
Figure 5. Output Voltage versus Temperature
Figure 6. Output Voltage versus Input Voltage
V
IN
− V
OUT
, DROPOUT VOLTAGE (mV)
V
OUT(nom)
= 3.0 V
250
80 mA LOAD
200
150
ENABLE
VOLTAGE (V)
300
4
2
0
3
V
OUT
, OUTPUT
VOLTAGE (V)
40 mA LOAD
2
1
0
0
50
100
150
200
250
300
350 400
t, TIME (ms)
C
OUT
= 0.1
mF
I
OUT
= 10 mA
V
IN
= 4.0 V
C
IN
= 1.0
mF
100
50
0
−50
−25
0
25
50
75
T, TEMPERATURE (°C)
10 mA LOAD
100
125
Figure 7. Dropout Voltage versus Temperature
Figure 8. Turn−On Response (NCP562 ONLY)
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NCP562, NCV562, NCP563, NCV563
I
OUT
, OUTPUT
CURRENT (mA)
V
IN
, INPUT
VOLTAGE (V)
6
5
4
3
1
0.5
0
−0.5
−1
0
50
V
OUT
= 3.0 V
C
OUT
= 0.1
mF
I
OUT
= 10 mA
100 150 200 250 300 350 400
t, TIME (ms)
60
30
0
−30
1
0.5
0
−0.5
−1
0
50
100 150 200 250 300 350 400
t, TIME (ms)
450 500
V
OUT
= 3.0 V
C
OUT
= 0.1
mF
I
OUT
= 1 mA to 30 mA
V
IN
= 4.0 V
OUTPUT VOLTAGE
DEVIATION (V)
450 500
Figure 9. Line Transient Response
V
n
, OUTPUT VOLTAGE NOISE (mV/√Hz)
I
OUT
, OUTPUT
CURRENT (mA)
60
30
0
−30
400
200
0
−200
−400
0
C
OUT
= 1.0
mF
V
OUT
= 3.0 V
100 200
300 400 500 600 700 800 900 1000
t, TIME (ms)
I
OUT
= 1 mA to 30 mA
V
IN
= 4.0 V
3.5
3
2.5
2
1.5
1
0.5
0
0.01
OUTPUT VOLTAGE
DEVIATION (V)
Figure 10. Load Transient Response
V
IN
= 5.0 V
V
OUT
= 3.0 V
I
OUT
= 50 mA
C
OUT
= 0.1
mF
OUTPUT VOLTAGE
DEVIATION (mV)
0.1
1
10
f, FREQUENCY (kHz)
100
1000
Figure 11. Load Transient Response
Figure 12. Output Voltage Noise
DEFINITIONS
Load Regulation
Line Regulation
The change in output voltage for a change in output current
at a constant temperature.
Dropout Voltage
The input/output differential at which the regulator output
no longer maintains regulation against further reductions in
input voltage. Measured when the output drops 3.0% below
its nominal. The junction temperature, load current, and
minimum input supply requirements affect the dropout level.
Maximum Power Dissipation
The change in output voltage for a change in input voltage.
The measurement is made under conditions of low dissipation
or by using pulse technique such that the average chip
temperature is not significantly affected.
Line Transient Response
Typical over and undershoot response when input voltage
is excited with a given slope.
Thermal Protection
The maximum total dissipation for which the regulator
will operate within its specifications.
Quiescent Current
The quiescent current is the current which flows through
the ground when the LDO operates without a load on its
output: internal IC operation, bias, etc. When the LDO
becomes loaded, this term is called the Ground current. It is
actually the difference between the input current (measured
through the LDO input pin) and the output current.
Internal thermal shutdown circuitry is provided to protect
the integrated circuit in the event that the maximum junction
temperature is exceeded. When activated at typically 160°C,
the regulator turns off. This feature is provided to prevent
failures from accidental overheating.
Maximum Package Power Dissipation
The maximum power package dissipation is the power
dissipation level at which the junction temperature reaches its
maximum operating value, i.e. 125°C. Depending on the
ambient power dissipation and thus the maximum available
output current.
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