LT6000/LT6001/LT6002
7
600012fa
TYPICAL PERFOR A CE CHARACTERISTICS
UW
Supply Current vs Supply Voltage
TOTAL SUPPLY VOLTAGE (V)
0
0
SUPPLY CURRENT PER AMPLIFIER (µA)
5
10
15
12 14 16
35
600012 G03
246810 18
20
25
30
T
A
= 125°C
T
A
= –55°C
T
A
= 25°C
V
CM
= 0.5V
TC V
OS
DistributionV
OS
Distribution
Input Offset Voltage
vs Total Supply Voltage
TOTAL SUPPLY VOLTAGE (V)
0
–300
OFFSET VOLTAGE (µV)
–100
–100
0
12 14 16
400
600012 G05
246810 18
100
200
300
T
A
= 125°C
T
A
= –55°C
T
A
= 25°C
V
CM
= 0.5V
TYPICAL PART
INPUT COMMON MODE VOLTAGE (V)
–200
OFFSET VOLTAGE (µV)
0
200
400
–100
100
300
1234
60012 G06
50.50 1.5 2.5 3.5 4.5
V
S
= 5V, 0V
TYPICAL PART
T
A
= 125°C
T
A
= 25°C
T
A
= –55°C
Input Bias Current
vs Common Mode Voltage
COMMON MODE VOLTAGE (V)
0
–5.0
INPUT BIAS CURRENT (nA)
–2.5
2.5
5.0
7.5
12.5
0.5
2.5
3.5
60012 G07
0
10.0
2
4.5
5
1
1.5
34
V
S
= 5V, 0V
T
A
= 125°C
T
A
= 25°C
T
A
= –55°C
Output Saturation Voltage
vs Load Current (Output High)
SOURCING LOAD CURRENT (mA)
0.001
0.01
OUTPUT HIGH SATURATION VOLTAGE (V)
0.1
1.0
0.1 10.01 10
60012 G08
T
A
= 25°C
T
A
= 125°C
T
A
= –55°C
V
S
= 5V, 0V
INPUT OVERDRIVE = 30mV
Output Saturation Voltage
vs Load Current (Output Low)
SINKING LOAD CURRENT (mA)
0.001
0.01
OUTPUT LOW SATURATION VOLTAGE (V)
0.1
1.0
0.1 10.01 10
60012 G08
T
A
= 25°C
T
A
= 125°C
T
A
= –55°C
V
S
= 5V, 0V
INPUT OVERDRIVE = 30mV
Input Offset Voltage
vs Input Common Mode Voltage
INPUT OFFSET VOLTAGE (µV)
0
PERCENT OF UNITS (%)
10
20
30
5
15
25
–400 –200 0 200
60012 G01
600400–600
V
S
= 5V, 0V
V
CM
= 2.5V
MS8 PACKAGE
DISTRIBUTION (µV/°C)
–5
PERCENT OF UNITS (%)
12
16
20
3
20012 G02
8
4
10
14
18
6
2
0
–3–4
–1–2
12 4
0
5
V
S
= 5V, 0V
V
CM
= 2.5V
MS8, GN16,
DD10 PACKAGES
–40°C TO 85°C
TOTAL SUPPLY VOLTAGE (V)
1
CHANGE IN OFFSET VOLTAGE (µV)
100
150
200
3
60012 G35
50
0
–100
1.5
2
2.5
–50
300
250
T
A
= 125°C
T
A
= 25°C
V
CM
= 0.5V
T
A
= –55°C
Change in Input Offset Voltage
vs Total Supply Voltage
LT6000/LT6001/LT6002
600012fa
8
TYPICAL PERFOR A CE CHARACTERISTICS
UW
0.1Hz to 10Hz Output Voltage Noise
Open-Loop Gain
Output Short-Circuit Current vs
Total Supply Voltage (Sourcing)
TOTAL SUPPLY VOLTAGE (V)
1
8
10
14
4
60012 G11
6
4
23 5
2
0
12
OUTPUT SHORT-CIRCUIT CURRENT (mA)
V
CM
= 0.5V
OUTPUT SHORTED TO V
T
A
= 125°C
T
A
= 25°C
T
A
= –55°C
Output Short-Circuit Current vs
Total Supply Voltage (Sinking)
TOTAL SUPPLY VOLTAGE (V)
1
OUTPUT SHORT-CIRCIUT CURRENT (mA)
4
6
5
60012 G12
2
0
2
3
4
10
8
V
CM
= 0.5V
OUTPUT SHORTED TO V
+
T
A
= 125°C
T
A
= 25°C
T
A
= –55°C
TIME (SECONDS)
NOISE VOLTAGE (500nV/DIV)
2468
60012 G13
10103579
V
S
= ±2.5V
Noise Voltage Density vs Frequency
FREQUENCY (Hz)
1
50
NOISE VOLTAGE (nV/Hz)
80
90
100
10 100 1000
60012 G14
70
60
V
S
= 5V, 0V
T
A
= 25°C
V
CM
= 4.5V
V
CM
= 2.5V
Input Noise Current vs Frequency
FREQUENCY (Hz)
1
10
INPUT NOISE CURRENT DENSITY (fA/Hz)
100
1000
10 100 1000
60012 G15
V
S
= 5V, 0V
T
A
= 25°C
V
CM
= 4.5V
V
CM
= 2.5V
OUTPUT VOLTAGE (V)
0
–60
CHANGE IN INPUT OFFSET VOLTAGE (µV)
–40
–20
0
20
60
0.3
0.6 0.9 1.2
60012 G16
1.5 1.8
40
V
S
= 1.8V, 0V
V
CM
= 0.5V
T
A
= 25°C
R
L
= 10k
R
L
= 100k
OUTPUT VOLTAGE (V)
0
CHANGE IN INPUT OFFSET VOLTAGE (µV)
0
20
4
60012 G17
–20
–40
1
2
3
5
40
V
S
= 5V, 0V
V
CM
= 2.5V
T
A
= 25°C
R
L
= 10k
R
L
= 100k
OUTPUT VOLTAGE (V)
–2.5
CHANGE IN INPUT OFFSET VOLTAGE (µV)
200
150
100
50
0
–50
–100
–150
– 200
1.5
20012 G18
–1.5 –0.5 0.5 2.51–2 –1 0 2
V
S
= ±2.5V
T
A
= 25°C
R
L
= 10k
R
L
= 100k
Open-Loop Gain Open-Loop Gain
Output Saturation Voltage
vs Input Overdrive
INPUT OVERDRIVE (mV)
0
0
OUTPUT SATURATION VOLTAGE (mV)
20
40
60
5
10
15 20
60012 G10
25
80
100
10
30
50
70
90
30
V
S
= 5V, 0V
NO LOAD
OUTPUT HIGH
OUTPUT LOW
LT6000/LT6001/LT6002
9
600012fa
TYPICAL PERFOR A CE CHARACTERISTICS
UW
Slew Rate vs Temperature
Gain Bandwidth and Phase
Margin vs Temperature
TEMPERATURE (°C)
–50
10
GAIN BANDWIDTH (kHz)
PHASE MARGIN (DEG)
20
30
40
60
70
80
–25
25
50 125
50
45
50
55
60
70
75
80
65
0
75
100
V
S
= 1.8V, 0V
V
CM
= 0.5V
V
S
= 1.8V, 0V
V
CM
= 0.5V
V
S
= 5V, 0V
V
CM
= 2.5V
V
S
= 5V, 0V
V
CM
= 2.5V
GAIN BANDWIDTH
PHASE MARGIN
f = 1kHz
60012 G21
TEMPERATURE (°C)
–50
SLEW RATE (V/ms)
25
30
35
25 75
60012 G22
20
15
–25 0
50 100 125
10
5
RISING
V
S
= 5V, 0V
RISING
V
S
= 1.8V, 0V
FALLING
V
S
= 5V, 0V
FALLING
V
S
= 1.8V, 0V
A
V
= –1
R
F
= R
G
= 100k
Capacitive Load Handling
Overshoot vs Capacitive Load
CAPACITIVE LOAD (pF)
10
20
OVERSHOOT (%)
25
30
35
40
100 1000 10000
60012 G23
15
10
5
0
45
50
A
V
= 1
A
V
= 2
A
V
= 5
V
S
= 5V, 0V
V
CM
= 2.5V
Common Mode Rejection Ratio
vs Frequency
FREQUENCY (kHz)
0.1
70
COMMON MODE REJECTION RATIO (dB)
80
90
100
1 10 100
60012 G24
60
50
40
30
V
S
= ±2.5V
T
A
= 25°C
Power Supply Rejection Ratio
vs Frequency
FREQUENCY (kHz)
30
COMMON MODE REJECTION RATIO (dB)
70
110
10
50
90
0.01 1 10 100
60012 G25
–10
0.1
POSITIVE SUPPLY
NEGATIVE SUPPLY
V
S
= ±2.5V
T
A
= 25°C
Output Impedance vs Frequency
FREQUENCY (kHz)
0.01 0.1
0.1
OUTPUT IMPEDANCE ()
10
10000
1 10 100
60012 G26
1
100
1000
V
S
= ±2.5V
T
A
= 25°C
A
V
= 10
A
V
= 1
Disabled Output Impedance
vs Frequency (LT6000/LT6001DD)
FREQUENCY (kHz)
0.01
0
OUTPUT IMPEDANCE (k)
10
1000
1 0.1 10 100
60012 G27
1
100
V
S
= ±2.5V
V
PIN6(SHDN)
= –2.5V
Gain and Phase vs Frequency
FREQUENCY (kHz)
0
GAIN (dB)
PHASE (DEG)
60
70
–10
–20
50
20
40
30
10
0.1 10 100 1000
60012 G19
–30
–20
100
120
–40
–60
80
20
60
40
0
–80
1
V
CM
= 4.5V
V
CM
= 4.5V
V
CM
= 2.5V
PHASE
GAIN
V
CM
= 2.5V
V
S
= 5V, 0V
R
F
= R
G
= 100k
A
V
= –1
Gain Bandwidth and Phase
Margin vs Supply Voltage
TOTAL SUPPLY VOLTAGE (V)
0
30
PHASE MARGIN (DEG)
GAIN BANDWIDTH (kHz)
40
60
70
80
4
8
10 18
600012 G36
50
45
50
60
65
70
55
26
12
14
16
R
F
= R
G
= 100k
A
V
= –1
f = 1kHz
PHASE MARGIN
GAIN BANDWIDTH

LT6001IDD#PBF

Mfr. #:
Manufacturer:
Analog Devices Inc.
Description:
Precision Amplifiers 2x 1.8V, 13uA Prec R2R Op Amp
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
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