LT3465AES6#TRMPBF Linear Technology, LT3465AES6#TRMPBF Datasheet - Page 11

IC LED DRIVR WHITE BCKLGT TSOT-6

LT3465AES6#TRMPBF

Manufacturer Part Number
LT3465AES6#TRMPBF
Description
IC LED DRIVR WHITE BCKLGT TSOT-6
Manufacturer
Linear Technology
Type
Backlight, White LEDr
Datasheet

Specifications of LT3465AES6#TRMPBF

Topology
PWM, Step-Up (Boost)
Number Of Outputs
1
Internal Driver
Yes
Type - Primary
Backlight
Type - Secondary
White LED
Frequency
1.8MHz ~ 2.8MHz
Voltage - Supply
2.7 V ~ 16 V
Voltage - Output
30V
Mounting Type
Surface Mount
Package / Case
TSOT-23-6, TSOT-6
Operating Temperature
-40°C ~ 85°C
Current - Output / Channel
20mA
Internal Switch(s)
Yes
Efficiency
79%
No. Of Outputs
1
Output Current
340mA
Output Voltage
30V
Input Voltage
2.7V To 16V
Dimming Control Type
PWM
Operating Temperature Range
-40°C To +85°C
Driver Case Style
TSOT-23
Rohs Compliant
Yes
Operating Supply Voltage (typ)
3.3/5/9/12/15V
Number Of Segments
6
Operating Temperature (min)
-40C
Operating Temperature (max)
85C
Operating Temperature Classification
Industrial
Package Type
TSOT-23
Pin Count
6
Mounting
Surface Mount
Operating Supply Voltage (min)
2.7V
Operating Supply Voltage (max)
16V
Led Driver Application
Cell Phones, PDA
Lead Free Status / RoHS Status
Lead free / RoHS Compliant
Other names
LT3465AES6#TRMPBFTR

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APPLICATIO S I FOR ATIO
case. The Average FB Voltage vs PWM Duty Cycle curves
of different PWM frequencies with different output ca-
pacitors are shown in Figures 7c and 7d respectively. For
PWM frequency lower than 1kHz, the curves are almost
linear. For PWM frequency higher than 10kHz, the curves
show strong nonlinearity. Since the cause of the
nonlinearity is the output capacitor charging/discharg-
ing, the output capacitance and output voltage also affect
Figure 7c. V
200
180
160
140
120
100
80
60
40
20
Figure 7e.V
0
200
180
160
140
120
100
80
60
40
20
0
0
C
4 LEDs
0
OUT
U
10kHz PWM
C
OUT
= 0.22µF
20
CTRL PWM DUTY CYCLE (%)
= 0.22µF
FB
20
CTRL PWM DUTY CYCLE (%)
FB
U
vs CTRL PWM Duty Cycle
vs CTRL PWM Duty Cycle
40
40
60
W
60
80
80
10Hz
100Hz
1kHz
10kHz
30kHz
3465A F07c
2 LEDs
3 LEDs
4 LEDs
3465A F07e
100
U
100
the nonlinearity in the high PWM frequencies. Because
smaller capacitance corresponds to shorter capacitor
charging/discharging time, the smaller output capaci-
tance has better linearity as shown in Figures 7c and 7d.
Figures 7e and 7f show the output voltage’s effect to the
curves. The PWM signal should be at least 1.8V in
magnitude; lower voltage will lower the feedback voltage
as shown in Equation 1.
Figure 7f.V
200
180
160
140
120
100
200
180
160
140
120
100
80
60
40
20
80
60
40
20
0
Figure 7d. V
0
0
0
30kHz PWM
C
C
4 LEDs
OUT
OUT
10
= 0.22µF
= 0.47µF
20
CTRL PWM DUTY CYCLE (%)
20
FB
CTRL PWM DUTY CYCLE (%)
vs CTRL PWM Duty Cycle
30
FB
40
40
vs CTRL PWM Duty Cycle
LT3465/LT3465A
50
60
60
70
80
80
2 LEDs
3 LEDs
4 LEDs
3465A F07f
10Hz
100Hz
1kHz
10kHz
30kHz
3465A F07d
90
100
100
11
3465afa

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