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PDF SIP32416 Data sheet ( Hoja de datos )

Número de pieza SIP32416
Descripción (SIP32413 - SIP32416) Slew Rate Controlled Load Switch
Fabricantes Vishay Siliconix 
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SiP32413, SiP32414, SiP32416
Vishay Siliconix
Dual 2 A, 1.2 V, Slew Rate Controlled Load Switch
DESCRIPTION
SiP32413, SiP32414 and SiP32416 are slew rate controlled
load switches that is designed for 1.1 V to 5.5 V operation.
The devices guarantee low switch on-resistance at 1.2 V
input. SiP32413 and SiP32414 feature a controlled soft-on
slew rate of typical 150 µs that limits the inrush current for
designs of capacitive load or noise sensitive loads. SiP32416
features a longer slew rate of typical 2.5 ms to keep the peak
of the inrush current even lower.
The devices feature a low voltage control logic interface
(On/Off interface) that can interface with low voltage digital
control without extra level shifting circuit. The SiP32414 and
SiP32416 also integrate output discharge switches that
enable fast shutdown load discharge. When the switches are
off, they provide the reverse blocking to prevent high current
flowing into the power source.
All SiP32413, SiP32414 and SiP32416 are available in
TDFN8 2 mm x 2 mm package. Each switch in each device
can support over 2 A of continuous current.
FEATURES
Halogen-free according to IEC 61249-2-21
definition
• 1.1 V to 5.5 V operation voltage range
• 62 mtypical from 2 V to 5 V
• Low RON down to 1.2 V
• Slew rate controlled turn-on:
150 µs at 3.6 V for SiP32413, SiP32414
2.5 ms at 3.6 V for SiP32416
• Fast shutdown load discharge for SiP32414 and
SiP32416
• Low quiescent current
< 1 µA when disabled
6.7 µA at VIN = 1.2 V
• Switch off reversed blocking
Compliant to RoHS Directive 2002/95/EC
APPLICATIONS
• Cellular phones
• Portable media players
• Digital camera
• GPS
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Computers
Portable instruments and healthcare devices
TYPICAL APPLICATION CIRCUIT
VIN
CIN
4.7 µF
IN OUT
CNTRL
SiP32413, SiP32414, SiP32416
(for one switch)
CNTRL
GND
VOUT
C OUT
0.1 µF
GND
GND
Figure 1 - SiP32413, SiP32414, SiP32416 Typical Application Circuit
Document Number: 71437
www.vishay.com
S11-2472-Rev. B, 19-Dec-11
1
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT www.vishay.com/doc?91000
datasheet pdf - http://www.DataSheet4U.net/

1 page




SIP32416 pdf
SiP32413, SiP32414, SiP32416
Vishay Siliconix
TYPICAL CHARACTERISTICS (internally regulated, 25 °C, unless otherwise noted)
0.7
SiP32413
0.6
0.5
0.4
0.3
100
SiP32413
10
1 VIN = 5 V
VIN = 3.6 V
0.1
0.2
0.01
VIN = 1.2 V
0.1
0
1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5
VIN (V)
Figure 5 - SiP32413 Off Supply Current vs. VIN
0.001
- 40 - 20
0 20 40 60
Temperature (°C)
80 100
Figure 6 - SiP32414 Off Supply Current vs. Temperature
1.4
SiP32414
1.2 SiP32416
1.0
0.8
0.6
0.4
0.2
0
1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5
VIN (V)
Figure 7 - SiP32414 and SiP32416 Off Supply Current vs. VIN
1.0
0.9
0.8
0.7
0.6
0.5
0.4
0.3
0.2
0.1
0
1.0 1.5 2.0 2.5 3.0 3.5 4.0 4.5 5.0 5.5
VIN (V)
Figure 9 - Off Switch Current vs. Input Voltage
1000
100
SiP32414
SiP32416
10
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1
0.1
VIN = 5 V
VIN = 3.6 V
0.01
VIN = 1.2 V
0.001
- 40 - 20
0
20 40 60 80 100
Temperature (°C)
Figure 8 - SiP32414 and SiP32416 Off Supply Current
vs. Temperature
1000
100
10
VIN = 5 V
1
VIN = 3.6 V
0.1
0.01
VIN = 1.2 V
0.001
- 40 - 20
0
20 40 60 80 100
Temperature (°C)
Figure 10 - Off Switch Current vs. Temperature
Document Number: 71437
www.vishay.com
S11-2472-Rev. B, 19-Dec-11
5
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT www.vishay.com/doc?91000
datasheet pdf - http://www.DataSheet4U.net/

5 Page





SIP32416 arduino
SiP32413, SiP32414, SiP32416
Vishay Siliconix
DETAILED DESCRIPTION
SiP32413, SiP32414 and SiP32416 are dual n-channel
power MOSFETs designed as high side load switch with
slew rate control to prevent in-rush current. Once enable the
device charges the gate of the power MOSFET to 5 V gate
to source voltage while controlling the slew rate of the turn on
time. The mostly constant gate to source voltage keeps the
on resistance low through out the input voltage range. For
SiP32414, when disable the output discharge circuit turns on
to help pull the output voltage to ground more quickly. For all
parts, in disable mode, the reverse blocking circuit is
activated to prevent current from going back to the input in
case the output voltage is higher than the input voltage. Input
voltage is needed for the reverse blocking circuit to work
properly, it can be as low as VIN(min.).
APPLICATION INFORMATION
Input Capacitor
While bypass capacitors on the inputs are not required,
2.2 µF or larger capacitors for CIN is recommended in almost
all applications. The bypass capacitors should be placed as
physically close as possible to the device’s input to be
effective in minimizing transients on the input. Ceramic
capacitors are recommended over tantalum because of their
ability to withstand input current surges from low impedance
sources such as batteries in portable devices.
Output Capacitor
A 0.1 µF capacitor or larger across VOUT and GND is
recommended to insure proper slew operation. COUT may be
increased without limit to accommodate any load transient
condition with only minimal affect on the turn on slew rate
time. There are no ESR or capacitor type requirement.
Control
The CNTRL pins are compatible with both TTL and CMOS
logic voltage levels.
Protection Against Reverse Voltage Condition
SiP32413, SiP32414 and SiP32416 contain reverse blocking
circuitries to protect the current from going to the input from
the output in case where the output voltage is higher than the
input voltage when the main switch is off. Supply voltages as
low as the minimum required input voltage are necessary for
these circuitries to work properly.
Thermal Considerations
All three parts are designed to maintain constant output load
current. Due to physical limitations of the layout and
assembly of the device the maximum switch current is 2.4 A,
as stated in the Absolute Maximum Ratings table. However,
another limiting characteristic for the safe operating load
current is the thermal power dissipation of the package. To
obtain the highest power dissipation (and a thermal
resistance of 95) the power pad of the device should be
connected to a heat sink on the printed circuit board.
The maximum power dissipation in any application is
dependant on the maximum junction temperature,
TJ(max.) = 125 °C, the junction-to-ambient thermal resistance
for the TDFN4 1.2 mm x 1.6 mm package, J-A = 95 °C/W,
and the ambient temperature, TA, which may be formulaically
expressed as:
P (max.) = T J (max.) - TA
θJ- A
= 125 - TA
95
It then follows that, assuming an ambient temperature of
70 °C, the maximum power dissipation will be limited to about
580 mW.
So long as the load current is below the 2.4 A limit, the
maximum continuous switch current becomes a function two
things: the package power dissipation and the RDS(ON) at the
ambient temperature.
As an example let us calculate the worst case maximum load
current at TA = 70 °C. The worst case RDS(ON) at 25 °C
occurs at an input voltage of 1.2 V and is equal to 75 m. The
RDS(ON) at 70 °C can be extrapolated from this data using
the following formula:
RDS(ON) (at 70 °C) = RDS(ON) (at 25 °C) x (1 + TC x T)
Where TC is 3400 ppm/°C. Continuing with the calculation
we have
RDS(ON) (at 70 °C) = 75 mx (1 + 0.0034 x (70 °C - 25 °C))
= 86.5 m
The maximum current limit is then determined by
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I LOAD (max.) <
P (max.)
R DS(ON)
which in case is 2.6 A, assuming one switch turn on at a time.
Under the stated input voltage condition, if the 2.6 A current
limit is exceeded the internal die temperature will rise and
eventually, possibly damage the device.
To avoid possible permanent damage to the device and keep
a reasonable design margin, it is recommended to operate
the device maximum up to 2.4 A only as listed in the Absolute
Maximum Ratings table.
Vishay Siliconix maintains worldwide manufacturing capability. Products may be manufactured at one of several qualified locations. Reliability data for Silicon
Technology and Package Reliability represent a composite of all qualified locations. For related documents such as package/tape drawings, part marking, and
reliability data, see www.vishay.com/ppg?71437.
Document Number: 71437
www.vishay.com
S11-2472-Rev. B, 19-Dec-11
11
This document is subject to change without notice.
THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENT ARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT www.vishay.com/doc?91000
datasheet pdf - http://www.DataSheet4U.net/

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