LTC3251EMSE Linear Technology, LTC3251EMSE Datasheet - Page 12

IC CONV DC/DC SDOWN HIEFF 10MSOP

LTC3251EMSE

Manufacturer Part Number
LTC3251EMSE
Description
IC CONV DC/DC SDOWN HIEFF 10MSOP
Manufacturer
Linear Technology
Type
Step-Down (Buck), Switched Capacitor (Charge Pump)r
Datasheet

Specifications of LTC3251EMSE

Internal Switch(s)
Yes
Synchronous Rectifier
No
Number Of Outputs
1
Voltage - Output
0.9 ~ 1.6 V
Current - Output
500mA
Frequency - Switching
1MHz ~ 1.6MHz
Voltage - Input
2.7 ~ 5.5 V
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
10-MSOP Exposed Pad, 10-HMSOP, 10-eMSOP
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant
Power - Output
-
Other names
LTC3251EMS
LTC3251EMS

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
LTC3251EMSE
Manufacturer:
LT
Quantity:
10 000
Part Number:
LTC3251EMSE
Manufacturer:
LINEAR/凌特
Quantity:
20 000
Part Number:
LTC3251EMSE#PBF
Manufacturer:
LINEAR
Quantity:
429
Part Number:
LTC3251EMSE#TRPBF
Manufacturer:
LT/凌特
Quantity:
20 000
Part Number:
LTC3251EMSE-1.2
Manufacturer:
LINEAR/凌特
Quantity:
20 000
Part Number:
LTC3251EMSE-1.5
Manufacturer:
LT
Quantity:
10 000
Part Number:
LTC3251EMSE-1.5
Manufacturer:
LINEAR/凌特
Quantity:
20 000
OPERATIO
LTC3251/
LTC3251-1.2/LTC3251-1.5
temperature range, the 1µF, 10V, X5R or X7R will provide
more capacitance than the 4.7µF, 10V, Y5V. The capacitor
manufacturer’s data sheet should be consulted to deter-
mine what value of capacitor is needed to ensure mini-
mum capacitance values are met over operating tempera-
ture and bias voltage.
Below is a list of ceramic capacitor manufacturers and
how to contact them:
Layout Considerations
Due to the high switching frequency and transient currents
produced by the LTC3251, careful board layout is neces-
sary for optimal performance. A true ground plane and
short connections to all capacitors will improve perfor-
mance and ensure proper regulation under all conditions.
Figure 6 shows the recommended layout configuration.
12
GND
V
IN
Taiyo Yuden
1µF
C1
Murata
Kemet
AVX
TDK
Figure 6. Recommended Layout
1µF
C
U
I
(Refer to Block Diagram)
LTC3251 COMPONENTS NOT USED ON
THE LTC3251-1.2 OR LTC3251-1.5
10µF
C
R
www.avxcorp.com
www.t-yuden.com
www.murata.com
O
www.kemet.com
B
www.tdk.com
C2
1µF
R
A
3251 F06
C
5pF
A
V
OUT
The flying capacitor pins C1
high edge rate wave forms. The large dv/dt on these pins
can couple energy capacitively to adjacent printed circuit
board runs. Magnetic fields can also be generated if the
flying capacitors are not close to the part (i.e., the loop area
is large). To decouple capacitive energy transfer, a Faraday
shield may be used. This is a grounded PC trace between
the sensitive node and the IC’s pins. For a high quality AC
ground, it should be returned to a solid ground plane that
extends all the way to the part. Keep the FB trace of the
LTC3251 away from or shielded from the flying capacitor
traces or degraded performance could result.
Thermal Management
If the junction temperature increases above approximately
160°C, the thermal shutdown circuitry will automatically
deactivate the output. To reduce the maximum junction
temperature, a good thermal connection to the PC board
is recommended. Connecting the 10-pin MSE paddle
directly to a ground plane, and maintaining a solid ground
plane under the device on one or more layers of the PC
board, can reduce the thermal resistance of the package
and PC board considerably. Using this method a θ
40°C/W should be achieved. The actual power dissipated
by the LTC3251 (PD) can be calculated by the following
equation:
Power Efficiency
The power efficiency (η) of the LTC3251 family is approxi-
mately double that of a conventional linear regulator. This
occurs because the input current for a 2-to-1 step-down
charge pump is approximately half the output current. For
an ideal 2-to-1 step-down charge pump the power effi-
ciency is given by:
PD
η ≡
=
P
OUT
P
IN
V
2
IN
=
V
V
V
OUT
OUT OUT
IN
2
1
I
I
I
OUT
OUT
+
=
, C1
2
V
V
OUT
, C2
IN
+
, C2
will have very
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JA
of

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