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19-5966; Rev 1; 9/11
EVALUATION KIT AVAILABLE
MAX15112
High-Efficiency, 12A, Current-Mode Synchronous
Step-Down Regulator with Integrated Switches
General Description
The MAX15112 high-efficiency, current-mode step-down
regulator with integrated power switches operates from
2.7V to 5.5V and delivers up to 12A of output current in a
small 2mm x 3mm package. The MAX15112 offers excel-
lent efficiency with skip mode capability at light-load con-
ditions, yet provides unmatched efficiency under heavy
load conditions. The combination of small size and high
efficiency makes this device suitable for both portable
and nonportable applications.
The MAX15112 utilizes a current-mode control architecture
with a high-gain transconductance error amplifier, which
allows a simple compensation scheme and enables a
cycle-by-cycle current limit with fast response to line and
load transients. A factory-trimmed switching frequency of
1MHz (PWM operation) allows for a compact, all-ceramic
capacitor design.
Integrated switches with low on-resistance ensure high
efficiency at heavy loads while minimizing critical induc-
tances. The MAX15112’s simple layout and footprint
assure first-pass success in new designs.
Other features of the MAX15112 include a capacitor-
programmable soft-start to reduce inrush current, safe
startup into a prebiased output, an enable input, and a
power-good output for power sequencing.
The regulator is available in a 24-bump (4 x 6), 2.10mm
x 3.05mm WLP package, and is fully specified over the
-40NC to +85NC extended temperature range.
Features
S Continuous 12A Output Current
S ±1% Feedback Accuracy Over Load, Line, and
Temperature
S Operates from 2.7V to 5.5V Supply
S Input Undervoltage Lockout
S Adjustable Output Range from 0.6V Up to 0.94 x VIN
S Programmable Soft-Start
S Factory-Trimmed 1MHz Switching Frequency
S Stable with Low-ESR Ceramic Output Capacitors
S Safe-Startup into a Prebiased Output
S External Reference Input
S Selectable Skip Mode Option for Improved
Efficiency at Light Loads
S Enable Input/PGOOD Output Allows Sequencing
S Remote Ground Sense for Improved Accuracy
S Thermal and Overcurrent Protection
S Tiny 2.10mm x 3.05mm, 24-Bump WLP Package
Applications
Notebooks
Servers
Distributed Power Systems
DDR Memory
Base Stations
Ordering Information appears at end of data sheet.
Typical Operating Circuits
ON
OFF
VIN = 2.7V TO 5.5V
CIN
PGOOD
RPULL
CSS
EN
SKIP
AIN
MAX15112
IN
PGOOD
SS/REFIN
GND
BST
LX
GSNS
FB
COMP
CCC
PWM MODE OPERATION
Typical Operating Circuits continued at end of data sheet.
CBST
LOUT
RC
CC
COUT
VOUT
R1
R2
For related parts and recommended products to use with this part, refer to: www.maxim-ic.com/MAX15112.related
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For pricing, delivery, and ordering information, please contact Maxim Direct at 1-888-629-4642,
or visit Maxim’s website at www.maxim-ic.com.
MAX15112
High-Efficiency, 12A, Current-Mode Synchronous
Step-Down Regulator with Integrated Switches
Typical Operating Characteristics (continued)
(VIN = 5V, VOUT = 1.5V, ILOAD = 4A, CSS = 33nF, see the Typical Operating Circuits, TA = +25°C, unless otherwise noted.)
EFFICIENCY vs. LOAD CURRENT
(VIN = 5V, SKIP MODE)
100
95 VOUT = 2.5V
VOUT = 3.3V
90
85
80 VOUT = 1.8V
75 VOUT = 1.5V
70
65
60
55
50
0.1
1.508
1 10
LOAD CURRENT (A)
OUTPUT VOLTAGE
vs. INPUT VOLTAGE (PWM)
100
1.506
SWITCHING FREQUENCY
vs. INPUT VOLTAGE (PWM, IOUT = 0A)
1100
1080 TA = +85°C
1060
1040
1020 TA = +25°C
1000
980
960
940 TA = -40°C
920
900
2.5 3.0 3.5 4.0 4.5 5.0 5.5
INPUT VOLTAGE (V)
OUTPUT VOLTAGE ERROR
vs. INPUT VOLTAGE (PWM, IOUT = 6A)
0.20
REFERENCED TO VIN = 4V
0.15
1.504
1.502
1.500
IOUT = 0A
IOUT = 6A
0.10
0.05
0 VOUT = 1.2V
1.498
-0.05
1.496
1.494
IOUT = 12A
-0.10
VOUT = 1.8V
-0.15
1.492
2.5 3.0 3.5 4.0 4.5 5.0 5.5
INPUT VOLTAGE (V)
-0.20
2.5 3.0 3.5 4.0 4.5 5.0 5.5
INPUT VOLTAGE (V)
OUTPUT VOLTAGE
vs. LOAD CURRENT (PWM, VOUT = 1.5V)
1.510
1.508
1.506
1.504
1.502
1.500
VIN = 5V
VIN = 3.3V
1.498
1.496
1.494
1.492
1.490
0
2 4 6 8 10 12
LOAD CURRENT (A)
LOAD-TRANSIENT RESPONSE
(VIN = 5V, PWM, 1A /µs)
MAX15112 toc09
VOUT
20mV/div
AC-COUPLED
6A
IOUT
2A /div
0.1A
40µs/div
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