LTC3205EUF#PBF Linear Technology, LTC3205EUF#PBF Datasheet - Page 11

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LTC3205EUF#PBF

Manufacturer Part Number
LTC3205EUF#PBF
Description
IC LED DRVR WT/RGB BCKLGT 24-QFN
Manufacturer
Linear Technology
Type
Backlight, White LED, RGB (Serial Interface)r
Datasheet

Specifications of LTC3205EUF#PBF

Topology
PWM, Step-Down (Buck), Step-Up (Boost), Switched Capacitor (Charge Pump)
Number Of Outputs
9
Internal Driver
Yes
Type - Primary
Backlight
Type - Secondary
RGB, White LED
Frequency
600kHz ~ 1.1MHz
Voltage - Supply
2.8 V ~ 4.5 V
Mounting Type
Surface Mount
Package / Case
24-QFN
Operating Temperature
-40°C ~ 85°C
Current - Output / Channel
250mA
Internal Switch(s)
Yes
Efficiency
92%
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Voltage - Output
-

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APPLICATIO S I FOR ATIO
lose considerable capacitance over that range. Z5U and Y5V
capacitors may also have a very strong voltage coefficient
causing them to lose 60% or more of their capacitance when
the rated voltage is applied. Therefore, when comparing dif-
ferent capacitors, it is often more appropriate to compare
the amount of achievable capacitance for a given case size
rather than comparing the specified capacitance value. For
example, over rated voltage and temperature conditions,
a 1 F, 10V, Y5V ceramic capacitor in a 0603 case may not
provide any more capacitance than a 0.22 F, 10V, X7R
available in the same 0603 case. The capacitor
manufacturer’s data sheet should be consulted to determine
what value of capacitor is needed to ensure minimum
capacitances at all temperatures and voltages.
Table 4 shows a list of ceramic capacitor manufacturers
and how to contact them:
Table 4. Recommended Capacitor Vendors
AVX
Kemet
Murata
Taiyo Yuden
Vishay
For very light load applications, the flying capacitors may
be reduced to save space or cost. The theoretical mini-
mum output resistance of a 2:3 fractional charge pump is
given by:
where f
C
FLY
R
OL MIN
is the value of the flying capacitors. Note that the
(
OSC
)
is the switching frequency (800kHz typ) and
1 5
.
V
U
IN
I
OUT
V
OUT
U
www.avxcorp.com
www.kemet.com
www.murata.com
www.t-yuden.com
www.vishay.com
2
f
OSC FLY
W
1
C
PIN 1
Figure 7. Optimum Single Layer PCB Layout
U
charge pump will typically be weaker than the theoretical
limit due to additional switch resistance, however for very
light load applications, the above expression can be used
as a guideline in determining a starting capacitor value.
Layout Considerations and Noise
Due to its high switching frequency and the transient
currents produced by the LTC3205, careful board layout is
necessary. A true ground plane and short connections to
all capacitors will improve performance and ensure proper
regulation under all conditions. Figure 7 shows the recom-
mended layout configuration.
The flying capacitor pins C1
very high edge rate waveforms. 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 LTC3205 (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 LTC3205 pins. For a high
quality AC ground, it should be returned to a solid ground
plane that extends all the way to the LTC3205
Power Efficiency
To calculate the power efficiency ( ) of a white LED driver
chip, the LED power should be compared to the input
power. The difference between these two number repre-
sents lost power whether it is in the charge pump or the
current sources. Stated mathematically, the power effi-
ciency is given by:
P
P
LED
IN
3205 F07
+
, C2
GND
V
CPO
IN
+
, C1
LTC3205
and C2
will have
11
3205f

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