Temperature Range . . . . . . . . . . . . . . . . . . . . . . . . .-40°C to +105°C
CAUTION: Do not operate at or near the maximum ratings listed for extended periods of time. Exposure to such conditions may adversely impact product reliability and
result in failures not covered by warranty.
IMPORTANT NOTE: All parameters having Min/Max specifications are guaranteed. Typical values are for information purposes only. Unless otherwise noted, all tests
are at the specified temperature and are pulsed tests, therefore: T
J
= T
C
= T
A
NOTES:
1.
JA
is measured in free air with the component mounted on a high effective thermal conductivity test board with “direct attach” features. See
Tech Brief TB379.
2. For
JC
, the “case temp” location is the center of the exposed metal pad on the package underside.
Electrical Specifications
PARAMETER
VIN
VIN
V
BAT
V
BATFAULT
I
S
E
N
I
S
D
IS
R
SWITCH
V
DC
R
OUTOL
R
OUTCL
I
OUT
I
LIMBOOST
I
LIMBUCK
OVPH
OVPL
V
GATE
V
GATE
V
FB
V
LEVEL
FB
UV FAULT
V
BAT
= V
IN
= 12V, V
DC
= 5V, T
A
= -40°C to +105°C unless otherwise specified.
CONDITIONS
I
OUT
= 350mA, 8 LEDs, BUCK/BOOSTN = GND
I
OUT
= 350mA, 5 LEDs, BUCK/BOOSTN = GND,
TMAX disabled
Normal operating range
If V
BAT
> V
BATFAULT
, FAULT pin is switched to
ground
No switching, EN/PWM = 1
No switching, EN/PWM = 0
I
SWITCH
= 600mA
4.75
V
IN
< V
DC
V
IN
> 6V, F < 100Hz
4 LED output string. V
IN
= V
BAT
= 10V
BUCK/BOOSTN = GND
BUCK/BOOSTN = VDC
Upper threshold to enter overvoltage fault mode,
T
A
= +25°C
Lower threshold to exit overvoltage fault mode,
T
A
= +25°C
V
IN
- V
FAULT
V
FAULT
- V
IN
System in regulation, V
LEVEL
= 1V,
V
IN
= 12V, 6 LEDs
Mode = 1, analog control of LED current
V
LEVEL
= 1V, EN/PWM = 3V
9.76
8.16
0.18
0.25
100
160
31
1
3.6
2.4
32
20
12.2
10.2
0.2
23
14.64
12.24
0.22
3
200
MIN
5
2.7
2.7
17.6
21
2.7
0.6
0.15
5
TYP
MAX
16
12
16
24
3.5
2.5
0.25
5.25
40
6.5
UNIT
V
V
V
V
mA
µA
V
A
A
A
V
V
V
V
V
V
mV
DESCRIPTION
Input Supply Voltage
Input Supply Voltage
Input Supply Monitor
Supply Fault Threshold
Supply Current in V
IN
Supply Current in V
IN
Power FET On-Resistance
Regulated Auxiliary Supply
Auxiliary Supply Open Loop Output
Resistance
Auxiliary Supply Closed Loop Output
Resistance
Output Drive Current
Power Switch Current Limit
Power Switch Current Limit
Overvoltage Positive Going Voltage
Mode Threshold
Overvoltage Negative Going Voltage
Mode Threshold
Protection FET VGS (Gate Clamp)
Protection FET VGS (Gate Clamp)
Feedback Voltage
Light Control Voltage Linear Input
Range
Feedback Undervoltage Fault
FN6626 Rev 1.00
December 24, 2013
Page 2 of 20
ISL78100
Electrical Specifications
PARAMETER
FB
OV FAULT
f
SW
f
DIMMING
t
SWITCH
RLS
DRIVERL
RLS
DRIVERH
t
FAULT
t
DELAY
V
FAULTPUMP
V
BOOST
V
BUCK
V
MODEL
V
MODEH
en
FAULT
dis
FAULT
en
TEMP
dis
TEMP
T
COMPP
T
COMPN
T
TRIP
T
HYS
VEN/PWM
L
VEN/PWM
H
V
DCUVLO
R
Schottky
.
V
BAT
= V
IN
= 12V, V
DC
= 5V, T
A
= -40°C to +105°C unless otherwise specified.
(Continued)
CONDITIONS
V
LEVEL
= 1V, EN/PWM = 3V
MIN
220
800
Mode = 1, modulation signal applied to EN/PWM
C
GATE
= 2nF
EN/PWM = 0
EN/PWM = 3V
40
Timed LX switching delay
V
BAT
= V
IN
= 3V
BUCK/BOOSTN = GND
BUCK/BOOSTN = V
DC
MODE = GND
MODE = V
DC
2/3V
DC
0.9V
DC
0.96V
DC
0.5
0.08
VTEMP/VDC = 0.80
VTEMP/VDC = 0.20
1.26
0.74
135
25
1.2
2.5
2.6
15
23
°C
°C
V
V
V
0.94V
DC
1/3V
DC
0.85
6
0.4V
DC
TYP
250
1000
10
100
30
30
50
1
50
52
60
1.24
MAX
300
1150
UNIT
mV
kHz
kHz
ns
ms
ms
V
V
V
V
V
V
V
V
V
DESCRIPTION
Feedback Overvoltage Fault
Switching Frequency
Maximum Recommended PWM
Dimming Frequency
Load Switch Transition Time
Load Switch Driver Impedance Low
Load Switch Driver Impedance High
Fault Timer Period
Start-up Delay
Fault Pin Charge Pump
Boost Mode Threshold
Buck Mode Threshold
Mode Low Threshold
Mode High Threshold
Input Level Applied to TMAX Pin to
Enable Fault Protection
Input Level Applied to TMAX Pin to
Disable Fault Protection
Input Level Applied to TEMP Pin to
Enable Temperature Compensation
Input Level Applied to TEMP Pin to
Disable Temperature Compensation
VFB Positive Temperature
Compensation; VFB/VFBnom
VFB Negative Temperature
Compensation; VFB/VFBnom
Internal Temperature Protection
Threshold
Internal Temperature Protection
Hysteresis
EN/PWM Pin Input Low Threshold
EN/PWM Pin Input High Threshold
V
DC
Undervoltage Lockout
Internal Schottky Diode for Buck
TABLE 1. LIGHT OUTPUT CONTROL, V
DC
= 5.0V
MODE
1
Don’t Care
0
TEMP
OPERATING MODE
(VDC - 0.25) > V > 0.25V
Standard Mode
light level to PWM modulation of EN/PWM input; LED bias current determined by
LEVEL voltage, nominal 1V
V < 0.25V
V < (VDC - 0.25)
Disable temperature compensation
Fixed Bias Mode
V
FB
level internally set to 0.4V, independent of V
LEVEL
FN6626 Rev 1.00
December 24, 2013
Page 3 of 20
ISL78100
Typical Performance Curves
100
8 LEDs
I
LEDpeak
= 380mA
95
90
EFFICIENCY (%)
85
80
75 99%@1kHz
70
65
60
6
8
10
12
V
IN
(V)
14
16
18
10%@10kHz
50%@100Hz
10%@1kHz
10%@100Hz
50%@1kHz
100
99%@100Hz
99%@10kHz
EFFICIENCY (%)
95
90
85
80
75
70
65
60
4
6
8
99% @ 100Hz
10% @ 100Hz
10
V
IN
(V)
12
14
16
10% @ 10kHz
5 LEDs
I
LEDpeak
= 380mA
99% @ 10kHz
50%@10kHz
FIGURE 1. 8 LEDs EFFICIENCY vs INPUT VOLTAGE vs
DIMMING FREQUENCY AND DUTY CYCLE
FIGURE 2. 5 LEDs EFFICIENCY vs INPUT VOLTAGE vs
DIMMING FREQUENCY AND DUTY CYCLE
100
100
95
99%@100Hz
EFFICIENCY (%)
99%@10kHz
90
85
80
75
70
65
10
60
0
5 LEDs
I
LEDpeak
= 380mA
PWM = 10kHz
8 LEDs, V
IN
= 12V
5 LEDs, V
IN
= 9V
20
40
60
80
PWM DIMMING DUTY CYCLE (%)
100
8 LEDs
3 LEDs
95 I
LEDpeak
= 380mA
90
EFFICIENCY (%)
85
80
75
70
65
60
4
6
V
IN
(V)
10%@100Hz
8
10%@10kHz
FIGURE 3. 3 LEDs EFFICIENCY vs INPUT VOLTAGE vs
DIMMING FREQUENCY AND DUTY CYCLE
FIGURE 4. 8 AND 5 LEDs EFFICIENCY vs PWM DUTY CYCLE
400
350
I
LEDpeak
= 380mA
4
5 LEDs @ 100Hz
3 LEDs @ 100Hz
DI
LED
(%)
3
2
1
0
-1
-2
-3
-4
-5
60
80
100
-6
6
8
99% @ 10kHz
99% @ 100Hz
10
12
V
IN
(V)
14
16
18
10% @ 10kHz
8 LEDs
I
LEDpeak
= 380mA
8 LEDs, V
IN
= 12V
5 LEDs, V
IN
= 9V
300
3 LEDs, V
IN
= 5V
I
LED
(mA)
250
200
150
100
50
0
0
8 LEDs @ 1kHz
10% @ 100Hz
8 LEDs @ 10kHz
5 LEDs @ 10kHz
20
40
PWM DIMMING DUTY CYCLE (%)
FIGURE 5. LEDs PWM DIMMING LINEARITY
FIGURE 6. 8 LEDs CURRENT ACCURACY vs INPUT VOLTAGE
FN6626 Rev 1.00
December 24, 2013
Page 4 of 20
ISL78100
Typical Performance Curves
(Continued)
10
8
6
4
DI
LED
(%)
DI
LED
(%)
2
0
-2
-4
-6
-8
-10
4
99% @ 100Hz
6
8
10
V
IN
(V)
12
14
16
10% @ 100Hz
99% @ 10kHz
10% @ 10kHz
5 LEDs
I
LEDpeak
= 380mA
16
14
12
10
8
6
4
2
0
-2
-4
4
5
6
7
V
IN
(V)
8
9
10
99% @ 100Hz
99% @ 10kHz
3 LEDs
I
LEDpeak
= 380mA
FIGURE 7. 5 LEDs CURRENT ACCURACY vs INPUT VOLTAGE
FIGURE 8. 3 LEDs CURRENT ACCURACY vs INPUT VOLTAGE
The TMS320C6678 Lite Evaluation Module (EVM) is an easy-to-use, cost-effective development tool that helps developers quickly start designing with the C6678 or C6674 or C6672 multicore DSPs. The EVM i...
The reference design establishes a simulation model for RS-485 communications over power cables. This simulation model can be used to evaluate the feasibility of implementing RS485 communications at a...
[i=s]This post was last edited by jennyzhaojie on 2021-2-6 16:48[/i]The CH32V103 is equipped with an RTC timer, which can be combined with the OLED display to form an RTC electronic clock.
The main pr...
Inductive proximity sensors can be used for contactless detection of metal near LC sensors. These inductive sensing solutions enable presence detection and task counting on factory assembly lines with...
When I was doing maintenance today, I found that the ADJ output was connected to the ground and the multimeter was beeping. I checked and found that my proportional resistors were too small. One was 1...
1 AT89S52 MCU Introduction
1.1 Main features of the chip
The AT89S52 microcontroller is a high-end, enhanced product recently launched by Atmel. It is a low-power, high-performance CMOS 8...[Details]
Meeting today’s demanding efficiency requirements is challenging when it comes to power supplies. Just understanding the many different programs and directives between end devices, power reviews, a...[Details]
1. Introduction This article describes how to use the TIM1_CH2N channel (PB14) of timer1 to generate PWM in the STM32 series. 2. Experimental Platform Library version: STM32F10x_StdPeriph_L...[Details]
At present, the global foldable screen smartphone market is booming, mobile phone manufacturers are making every effort to join the competition, and panel manufacturers are also unwilling to lag behi...[Details]
1. What are the articles and books about ISI? There are two relatively famous SI books that mention ISI. In the "High-Speed Digital System Design - Interconnect Theory and Design Practice Handbook"...[Details]
On November 7, Huawei's official EMUI Weibo account announced a good news that eight models including Huawei P40, P40 Pro, P40 Pro+, Mate30, Mate30 Pro, Mate30 5G, Mate30 Pro 5G, and Mate30 RS Porsch...[Details]
Jiwei.com News (Text/ANSON), at the end of March, OnePlus official Weibo released a preview poster, which mentioned Ready to charge! WarpTen is coming soon. It is understood that Warp Charge 3.0, whi...[Details]
According to Reuters, U.S. Senator Marco Rubio issued a statement on Thursday "demanding answers from the Biden administration" regarding rumors that the United States has approved China's Huawei's a...[Details]
Overview of PIC Microcontrollers PIC16F616 is a 14-pin, 8-bit CMOS microcontroller. It uses a reduced instruction set with only 35 instructions. Due to the use of the Harvard bus structure with separ...[Details]
According to Jiwei.com, "doing a good job in carbon peak and carbon neutrality" has become one of the key tasks of my country's "14th Five-Year Plan": striving to reach the peak before 2030, and the ...[Details]
Challenge: Design, develop, and manufacture a tool that can detect and isolate circulating tumor cells (CTCs) or fetal cells in maternal blood for personalized therapy in oncology or non-invasive p...[Details]
If Japan's sanctions take effect, Samsung Electronics Co. and SK Hynix, the world's top memory chip maker and Apple supplier, could be affected. According to foreign media reports, Japan announced ...[Details]
Use rpm -qa | grep tftp to check whether the tftp server is installed
If not. tftp: yum install tftp* (yum install xinetd tftp tftp-server)
Tftp configuration file is in vi /etc/xinetd.d/...[Details]