Input Current (Note 3) ....................................... –10mA
Operating Temperature Range (Note 4)
LT6700CS6-1/-2/-3 ............................ – 40°C to 85°C
LT6700IS6-1/-2/-3 ............................. – 40°C to 85°C
LT6700HS6-1/-2/-3 .......................... – 40°C to 125°C
PACKAGE/ORDER I FOR ATIO
TOP VIEW
OUTA 1
GND 2
+INA 3
6 OUTB
5 V
S
4 –INB
OUTA 1
GND 2
–INA 3
S6 PACKAGE
6-LEAD PLASTIC TSOT-23
T
JMAX
= 150°C,
θ
JA
= 230°C/W
S6 PACKAGE
6-LEAD PLASTIC TSOT-23
T
JMAX
= 150°C,
θ
JA
= 230°C/W
ORDER PART
NUMBER
LT6700CS6-1
LT6700IS6-1
LT6700HS6-1
S6 PART
MARKING*
LTK7
ORDER PART
NUMBER
LT6700CS6-2
LT6700IS6-2
LT6700HS6-2
*The temperature grades are identified by a label on the shipping container. Consult LTC Marketing for parts specified with wider operating temperature ranges.
ELECTRICAL CHARACTERISTICS
SYMBOL
V
TH(R)
PARAMETER
Rising Input Threshold Voltage
T
A
= 25°C, unless otherwise specified.
MIN
394
395
393
392
386
387
385
384
3.5
TYP
400
400
400
400
393.5
393.5
393.5
393.5
6.5
MAX
406
405
407
408
401
400
402
403
9.5
UNITS
mV
mV
mV
mV
mV
mV
mV
mV
mV
CONDITIONS
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
V
S
= 1.4V, 5V, 12V, 18V, R
L
= 100k, V
O
= 2V Swing
V
TH(F)
Falling Input Threshold Voltage
HYS
HYS = V
TH(R)
– V
TH(F)
2
U
U
W
W W
U
W
TOP VIEW
6 OUTB
5 V
S
4 –INB
OUTA 1
GND 2
+INA 3
TOP VIEW
6 OUTB
5 V
S
4 +INB
S6 PACKAGE
6-LEAD PLASTIC TSOT-23
T
JMAX
= 150°C,
θ
JA
= 230°C/W
S6 PART
MARKING*
LTADL
ORDER PART
NUMBER
LT6700CS6-3
LT6700IS6-3
LT6700HS6-3
S6 PART
MARKING*
LTADM
6700123fb
LT6700-1/LT6700-2/LT6700-3
ELECTRICAL CHARACTERISTICS
SYMBOL
I
B
PARAMETER
Input Bias Current
T
A
= 25°C, unless otherwise specified.
MIN
TYP
±0.01
±0.01
±4
55
60
70
0.01
0.01
29
18
2.2
0.22
MAX
±10
±10
±10
200
200
200
0.8
0.8
UNITS
nA
nA
nA
mV
mV
mV
µA
µA
µs
µs
µs
µs
CONDITIONS
V
S
= 1.4V, 18V, V
IN
= V
S
V
S
= 1.4V, V
IN
= 18V
V
S
= 1.4V, 18V, V
IN
= 0.1V
10mV Input Overdrive
V
S
= 1.4V, I
OUT
= 0.5mA
V
S
= 1.6V, I
OUT
= 3mA
V
S
= 5V, I
OUT
= 5mA
V
S
= 1.4V, 18V, V
OUT
= V
S
, V
IN
= 40mV Overdrive
V
S
= 1.4V, V
OUT
= 18V, V
IN
= 40mV Overdrive
V
S
= 5V, 10mV Input Overdrive, R
L
= 10k,
V
OL
= 400mV
V
S
= 5V, 10mV Input Overdrive, R
L
= 10k,
V
OH
= 0.9 • V
S
V
S
= 5V, 10mV Input Overdrive, R
L
= 10k
V
O
= (0.1 to 0.9) • V
S
V
S
= 5V, 10mV Input Overdrive, R
L
= 10k
V
O
= (0.1 to 0.9) • V
S
No Load Current
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
V
OL
Output Low Voltage
I
OFF
t
PD(HL)
t
PD(LH)
t
r
t
f
I
S
Output Leakage Current
High-to-Low Propagation Delay
Low-to-High Propagation Delay
Output Rise Time
Output Fall Time
Supply Current
5.7
6.5
6.9
7.1
10.0
11.0
12.5
13.0
µA
µA
µA
µA
The
q
denotes the specifications which apply over the temperature range of 0°C
≤
T
A
≤
70°C, unless otherwise specified (Notes 4, 5).
SYMBOL
V
TH(R)
PARAMETER
Rising Input Threshold Voltage
CONDITIONS
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
V
S
= 1.4V, 18V, V
IN
= V
S
V
S
= 1.4V, V
IN
= 18V
V
S
= 1.4V, 18V, V
IN
= 0.1V
10mV Input Overdrive
V
S
= 1.4V, I
OUT
= 0.5mA
V
S
= 1.6V, I
OUT
= 3mA
V
S
= 5V, I
OUT
= 5mA
V
S
= 1.4V, 18V, V
OUT
= V
S
, V
IN
= 40mV Overdrive
V
S
= 1.4V, V
OUT
= 18V, V
IN
= 40mV Overdrive
No Load Current
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
q
q
q
q
q
q
q
q
MIN
391.0
392.5
390.0
389.0
383.5
384.5
382.5
381.5
3
TYP
MAX
409.0
407.5
410.0
411.0
403.5
402.5
404.5
405.5
11
±15
±15
±15
250
250
250
1
1
13.0
14.0
15.5
16.0
UNITS
mV
mV
mV
mV
mV
mV
mV
mV
mV
nA
nA
nA
mV
mV
mV
µA
µA
µA
µA
µA
µA
6700123fb
V
TH(F)
Falling Input Threshold Voltage
HYS
I
B
HYS = V
TH(R)
– V
TH(F)
Input Bias Current
V
S
= 1.4V, 5V, 12V, 18V, R
L
= 100k, V
O
= 2V Swing
q
q
q
q
q
q
q
q
q
q
q
q
q
V
OL
Output Low Voltage
I
OFF
I
S
Output Leakage Current
Supply Current
3
LT6700-1/LT6700-2/LT6700-3
ELECTRICAL CHARACTERISTICS
SYMBOL
V
TH(R)
PARAMETER
Rising Input Threshold Voltage
The
q
denotes the specifications which apply over the temperature range of
–40°C
≤
T
A
≤
85°C, unless otherwise specified (Notes 4, 5).
CONDITIONS
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
V
S
= 1.4V, 5V, 12V, 18V, R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V, 18V, V
IN
= V
S
V
S
= 1.4V, V
IN
= 18V
V
S
= 1.4V, 18V, V
IN
= 0.1V
10mV Input Overdrive
V
S
= 1.4V, I
OUT
= 0.1mA
V
S
= 1.6V, I
OUT
= 3mA
V
S
= 5V, I
OUT
= 5mA
V
S
= 1.4V, 18V, V
OUT
= V
S
, V
IN
= 40mV Overdrive
V
S
= 1.4V, V
OUT
= 18V, V
IN
= 40mV Overdrive
No Load Current
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
MIN
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
TYP
MAX
410
408
411
412
404.5
403.5
405.5
406.5
11.5
±15
±15
±15
250
250
250
1
1
14.0
15.0
16.5
17.0
UNITS
mV
mV
mV
mV
mV
mV
mV
mV
mV
nA
nA
nA
mV
mV
mV
µA
µA
µA
µA
µA
µA
390
392
389
388
382.5
383.5
381.5
380.5
2
V
TH(F)
Falling Input Threshold Voltage
HYS
I
B
HYS = V
TH(R)
– V
TH(F)
Input Bias Current
V
OL
Output Low Voltage
I
OFF
I
S
Output Leakage Current
Supply Current
The
q
denotes the specifications which apply over the temperature range of –40°C
≤
T
A
≤
125°C, unless otherwise specified (Notes 4, 5).
SYMBOL
V
TH(R)
PARAMETER
Rising Input Threshold Voltage
CONDITIONS
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
V
S
= 1.4V, 5V, 12V, 18V, R
L
= 100k, V
O
= 2V Swing
V
S
= 1.4V, 18V, V
IN
= V
S
V
S
= 1.4V, V
IN
= 18V
V
S
= 1.4V, 18V, V
IN
= 100mV
10mV Input Overdrive
V
S
= 1.4V, I
OUT
= 0.1mA
V
S
= 1.6V, I
OUT
= 3mA
V
S
= 5V, I
OUT
= 5mA
V
S
= 1.4V, 18V, V
OUT
= V
S
, V
IN
= 40mV Overdrive
V
S
= 1.4V, V
OUT
= V
S
, V
IN
= 40mV Overdrive
No Load Current
V
S
= 1.4V
V
S
= 5V
V
S
= 12V
V
S
= 18V
MIN
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
q
LT6700H
TYP
MAX
411
410
412
413
405.5
404.5
406.5
407.5
13.5
±45
±45
±50
250
250
250
1
1
16.0
17.0
18.5
19.0
UNITS
mV
mV
mV
mV
mV
mV
mV
mV
mV
nA
nA
nA
mV
mV
mV
µA
µA
µA
µA
µA
µA
6700123fb
390
392
389
388
381.5
382.5
380.5
379.5
2
V
TH(F)
Falling Input Threshold Voltage
HYS
I
B
HYS = V
TH(R)
– V
TH(F)
Input Bias Current
V
OL
Output Low Voltage
I
OFF
I
S
Output Leakage Current
Supply Current
4
LT6700-1/LT6700-2/LT6700-3
ELECTRICAL CHARACTERISTICS
Note 1:
Absolute Maximum Ratings are those beyond which the life of the
device may be impaired.
Note 2:
A heat sink may be required to keep the junction temperature
below the absolute maximum rating when the output is shorted
indefinitely.
Note 3:
The inputs are protected by ESD diodes to the ground. If the input
voltage exceeds –0.3V below ground, the input current should be limited
to less than 10mA.
Note 4:
The LT6700CS6-1/-2/-3 and LT6700IS6-1/-2/-3 are guaranteed
functional over the operating temperature range of – 40°C to 85°C. The
LT6700HS6-1/-2/-3 are guaranteed functional over the operating
temperature range of –40°C to 125°C.
Note 5:
The LT6700CS6-1/-2/-3 are guaranteed to meet the specified
performance from 0°C to 70°C. The LT6700CS6-1/-2/-3 are designed,
characterized and expected to meet specified performance from – 40°C to
85°C but are not tested or QA sampled at these temperatures. The
LT6700IS6-1/-2/-3 are guaranteed to meet specified performance from
–40°C to 85°C. The LT6700HS6-1/-2/-3 are guaranteed to meet specified
performance from –40°C to 125°C.
PI FU CTIO S
V
S
LT6700-1
–INB
4
5
COMP B
6
OUTB
LT6700-2
–INB
4
V
S
5
COMP B
6
OUTB
LT6700-3
+INB
4
V
S
5
COMP B
6
OUTB
–
+
400mV
REFERENCE
COMP A
–
+INA
3
+
2
GND
6700123 PF01
OUTA (Pin 1):
Open-Collector Output of Comparator Sec-
tion A. This pin provides drive for up to 40mA of load
current. Off-state voltage may be as high as 18V above
GND (Pin 2), regardless of V
S
used.
GND (Pin 2):
Ground. This pin is also the low side return
of the internal 400mV reference.
INA (Pin 3):
External Input for Comparator Section A. The
voltage on this pin can range from –0.3V to 18V with
respect to GND (Pin 2) regardless of V
S
used. The input is
noninverting for the LT6700-1 and LT6700-3, and invert-
ing for the LT6700-2. The other section A comparator
input is internally connected to the 400mV reference.
U
U
U
–
+
+
–
V
S
400mV
REFERENCE
COMP A
V
S
400mV
REFERENCE
COMP A
V
S
+
1
OUTA
–INA
3
–
1
OUTA
+INA
3
1
OUTA
–
2
GND
6700123 PF02
+
2
GND
6700123 PF03
INB (Pin 4):
External Input for Comparator Section B. The
voltage on this pin can range from –0.3V to 18V with
respect to GND (Pin 2) regardless of V
S
used. The input is
noninverting for the LT6700-3, and inverting for the
LT6700-1 and LT6700-2. The other section B comparator
input is internally connected to the 400mV reference.
V
S
(Pin 5):
Comparator Core Supply Voltage. The parts are
characterized for operation with 1.4V
≤
V
S
≤
18V with
respect to GND (Pin 2).
OUTB (Pin 6):
Open-Collector Output of Comparator Sec-
tion B. This pin provides drive for up to 40mA of load
current. Off-state voltage may be as high as 18V above
I have a board powered by ATX. The board is out of town. Recently, debugging often freezes, and the only way is to turn the power on and off. I wonder if I can put a machine there and control the ATX ...
We have some sensors on site, and the sensors are connected through 485 lines. We want to set up a wireless network on site to transmit the data of these sensors to the industrial computer in the on-s...
I have received many parameter values with fixed frequency on the Internet. What is the relationship between resistance, capacitance and frequency? Thank you....
(Introduction) Detailed explanation of the standard BT656 parallel data structure In addition to transmitting 4:2:2 YCbCr video data streams, the BT.656 parallel interface also has control signals for...
When using a certain military instrument, two people are required to operate it. One of them commands according to the 10s or 20s preparation time requirement and refers to the countdown subtraction o...
The most important component of analog electronics should be the op amp.1. The main characteristics of the op amp: input impedance is "infinite", output impedance is "equal to" 0; open-loop amplificat...
Reflow soldering is a critical process in electronics assembly production, and the cleanliness of the reflow oven has a direct impact on product quality. Dust and residue accumulation within the ov...[Details]
New energy pure electric vehicles generally accelerate faster than comparable fuel-powered vehicles, both from a standing start and while accelerating. Many believe this is simply due to the motor'...[Details]
On August 22nd, Lantu Motors unveiled a new technology called "Lanhai Intelligent Hybrid" during a live broadcast of CCTV News' "Top Laboratory." The name sounds like another new term, but a closer...[Details]
SMT placement machines are important equipment in surface mount technology (Surface Mount Technology). Their performance has a decisive impact on the quality and efficiency of electronic manufactur...[Details]
Coal mines typically contain gas and coal dust. When gas and coal dust reach a certain concentration, they can cause explosions. Electrical equipment generates arcs during normal operation or durin...[Details]
Reflow soldering, as an electronics assembly process, has become a vital component of the electronics manufacturing industry. Choosing reflow soldering equipment is crucial for improving production...[Details]
Bosch has released a new SoC series to support L2+ advanced driver assistance functions. The chip integrates high resolution and long-range detection capabilities, and has built-in support for neur...[Details]
A pure sine wave inverter has a good output waveform with very low distortion, and its output waveform is essentially the same as the AC waveform of the mains power grid. In fact, the AC power prov...[Details]
With the prevalence of online conferencing, live streaming, and voice communication in gaming, high-quality audio input devices are becoming increasingly important. To this end, XMOS, an expert in ...[Details]
Compiled from semiengineering
The industry is increasingly concerned about power consumption in AI, but there are no simple solutions. This requires a deep understanding of software and ...[Details]
The screen is the first thing you notice when evaluating a phone's quality. Its quality directly impacts both visual and operational performance. However, understanding mobile phone screens r...[Details]
Since the beginning of the 21st century, with the rapid development of my country's urban and rural economies and the improvement of people's living standards, more and more people have begun to ow...[Details]
As in-vehicle audio and video entertainment features become increasingly diverse, the demand for digital transmission of audio and video information is urgent. Traditional protocols such as IEEE 13...[Details]
The power battery is a crucial component for vehicles, determining its lifespan and range. According to national regulations, when the capacity of an electric vehicle's power battery drops below 80...[Details]
Chip architecture licensing company ARM has hired Amazon's AI chip chief Rami Sinno to help advance its plan to develop its own complete chip, people familiar with the matter said, according to Reu...[Details]