Two Monolithic DC/DC Converters Take 3.6V–15V Inputs Down to 0.6V at High Frequency, Shrinking Battery-Powered Applications in Everything from Handhelds to Automobiles

Two Monolithic DC/DC Converters Take 3.6V–15V Inputs
Down to 0.6V at High Frequency, Shrinking Battery-Powered
Applications in Everything from Handhelds to Automobiles
Mylien Tran and Theo Phillips
When a relatively high voltage rail (12V) must be stepped down to a relatively low level
(3.3V, 1.8V), the traditional go-to converter is a DC/DC switching controller that drives
external MOSFETs. In many applications, replacing the typical controller-MOSFETdiode combo with a monolithic regulator would save space, design time and cost.
The problem is that 12V rails are too high for many monolithic buck converters, which
usually cannot be used with inputs above 6V. Additionally, switching losses typically
prevent practical operation above ~1MHz, precluding the use of the smallest possible
inductors, and in the end, negating some size advantages of a monolithic regulator.
The LTC3601 and LTC3604 are high
performance monolithic synchronous
step-down regulators capable of supplying up to 1.5A and 2.5A, respectively. They
operate from a wide input voltage range
of 3.6V to 15V—a range encompassing
battery chemistries found in handheld
devices, PCs, and automobiles. Their
unique constant frequency/controlled on
time architecture has a minimum on-time
of 20ns, ideal for high step-down ratio
applications that demand high switching
frequencies and fast transient response
while maintaining high efficiency.
DEFAULT CONFIGURATION WITH
MINIMAL COMPONENTS
To reduce external component count, cost,
and design time, switching frequency and
loop compensation may be set with simple
pin configurations. Figure 1 shows a typical application. To enable 2MHz operation, the oscillator frequency program pin
(RT) is tied to the internal 3.3V regulator
output pin (INTVCC). Default compensation is applied when the compensation
pin (ITH) is tied to INTVCC, producing a
clean load transient response (Figure 2).
36 | July 2011 : LT Journal of Analog Innovation
Operating frequency is programmable
from 800kHz to 4MHz with an external
resistor from RT to ground. For switchingnoise-sensitive applications, the LTC3601
and LTC3604 can be externally synchronized over the same frequency range
regardless of the state of RT. No external
PLL components are required for syncing.
Some applications call for shifting the
switching frequency during operation,
usually to avoid interference with adjacent
radio receivers. Figure 3 shows that the
deviation in output voltage is minimal
even when the sync frequency introduced
at MODE/SYNC is changing rapidly.
Both ICs feature optional Burst Mode®
operation for superior efficiency at low
load currents (Figure 4), or alternatively,
forced continuous mode, which gives
up light load efficiency for minimal
output ripple and constant frequency
operation. Even so, Burst Mode operation ripple is typically only 20mV.
The built-in internal 400µs soft-start timer
prevents current surges at VIN during
start-up. Longer soft-start times can be
implemented by ramping the TRACK pin
or connecting a capacitor from TRACK pin
to ground (tSS = 430,000 × CTRACK/SS). An
open drain PGOOD pin monitors the output
and pulls low if the output voltage is ±8%
from the regulation point. The additional
VIN overvoltage and short-circuit protection make for an all-around robust IC.
Figure 1. A wide input range to 3.3V, 2.5A application
VIN
3.6V TO 15V
22µF
VIN
RUN
BOOST
PGOOD
TRACK/SS
SW
VON
LTC3604
2.2µF
INTVCC
FB
ITH
RT
MODE/SYNC
SGND
PGND
0.1µF
1µH
182k
40.2k
22pF
VOUT
3.3V
2.5A
47µF
design ideas
The LTC3601 and LTC3604 employ a unique
constant frequency/controlled on time architecture
with a minimum on-time of 20ns—ideal for high
step-down ratio applications that demand high
switching frequencies and fast transient response.
100
10
90
SYNC
5V/DIV
EFFICIENCY (%)
SWITCH NODE
10V/DIV
VOUT
20mV/DIV
(AC-COUPLED)
VOUT
100mV/DIV
(AC-COUPLED)
1
70
60
0.1
50
40
30
VIN = 5V 0.01
VIN = 12V
20
fO = 2MHz
Burst Mode OPERATION
10
10µs/DIV
VIN = 12V
VOUT = 3.3V
LOAD STEP = 0A–1A–0A
5µs/DIV
EFFECT OF 800kHz–1MHz FREQUENCY TRANSIENT
VIN = 12V
VOUT = 3.3V
ILOAD = 0A
POWER LOSS (W)
IL
1A/DIV
80
0
0.001
0.01
0.1
1
LOAD CURRENT (A)
10
0.001
Figure 2. Fast transient response of the circuit in
Figure 1
Figure 3. The synchronized switching frequency can
be shifted on the fly, with little change in VOUT.
Figure 4. Burst Mode operation yields high
efficiency at light loads, and low RDS(ON) switches
maintain high efficiency at maximum load.
HIGH FREQUENCY, LOW DUTY
CYCLE, NO PROBLEM
on-time required for this application is
well above the LTC3604’s 20ns minimum.
oscillator (also set at 4MHz) will take over.
Finally, loop compensation is external.
Many microprocessors require low voltage 1.x volt rails, but they also reside in
applications that demand high switching
frequencies to keep passive components
small and avoid RF interference with critical frequency bands. The problem is that
achieving the magic combination of high
a step-down ratio and high switching frequency can be elusive, because it requires
such a short minimum on-time. Figure 5
shows the schematic for the LTC3604 in
a 4 MHz, 12V–1.8V application. The 38ns
The design in Figure 5 takes advantage
of a number of the LTC3604’s features.
Normally the minimum input voltage
is 3.6V, but here the undervoltage lockout is raised to 6V by adding a resistive divider from VIN to RUN. Soft-start
time is increased to 4.3ms by adding
10nF capacitance from TRACK to ground.
The switching frequency is synchronized to 4MHz from an external source.
If that source should fail, the internal
CONCLUSION
Figure 5. The LTC3604 can operate at high frequency (4 MHz) and low duty
cycle, allowing high step-down ratios from a compact footprint
VIN
12V
CIN
22µF
The LTC3601 and LTC3604 are part of a
new generation of monolithic DC/DC converters capable of handling relatively high
input voltages and lower duty cycles. Their
compact size, high performance, and minimal components design make them ideal
for compact applications. Both ICs are
offered in compact, thermally enhanced
3mm × 3mm QFN and MSOP packages. n
VIN
BOOST
0.1µF L1
154k
0.47µH
RUN
SW
VON
40.2k
80.6k
LTC3604
2.2µF
INTVCC
270pF
40.2k
PGOOD
ITH
TRACK
RT
MODE/SYNC
80.6k
COUT
22µF
FB
100k
10k
22pF
VOUT
1.8V
2.5A
SGND
PGND
10nF
EXTERNAL
CLOCK
CIN: TDK C3225X5R1C226M
COUT: TDK C3216X5R0J226M
L1: VISHAY IHLP2020BZERR47M01
July 2011 : LT Journal of Analog Innovation | 37