LT6604-5
4
66045fa
ELECTRICAL CHARACTERISTICS
The l denotes the specifi cations which apply over the full operating
temperature range, otherwise specifi cations are at T
A
= 25°C. Unless otherwise specifi ed V
S
= 5V (V
+
= 5V, V
= 0V), R
IN
= 806Ω, and
R
LOAD
= 1k.
PARAMETER
CONDITIONS MIN TYP MAX UNITS
Input Referred Differential Offset R
IN
= 806Ω
V
S
= 3V
V
S
= 5V
V
S
= ±5V
l
l
l
5
10
8
25
30
35
mV
mV
mV
R
IN
= 229Ω
V
S
= 3V
V
S
= 5V
V
S
= ±5V
l
l
l
5
5
5
13
16
20
mV
mV
mV
Differential Offset Drift 10 μV/°C
Input Common Mode Voltage (Note 3) Differential Input = 500mV
P-P
, R
IN
= 229Ω
V
S
= 3V
V
S
= 5V
V
S
= ±5V
l
l
l
0
0
–2.5
1.5
3
1
V
V
V
Output Common Mode Voltage (Note 5) Differential Output = 2V
P-P
, V
MID
= OPEN
V
S
= 3V
V
S
= 5V
V
S
= ±5V
l
l
l
1
1.5
–1
1.5
3
2
V
V
V
Output Common Mode Offset
(with Respect to V
OCM
)
V
S
= 3V
V
S
= 5V
V
S
= ±5V
l
l
l
–25
–30
–55
5
5
–5
50
45
35
mV
mV
mV
Common Mode Rejection Ratio 61 dB
Voltage at V
MID
V
S
= 5V
V
S
= 3V
l
2.45 2.51
1.5
2.56 V
V
V
MID
Input Resistance
l
4.3 5.5 7.7
V
OCM
Bias Current V
OCM
= V
MID
= V
S
/2
V
S
= 5V
V
S
= 3V
l
–15
–10
–3
–3
μA
μA
Power Supply Current
(Per Channel)
V
S
= 3V, V
S
= 5V
V
S
= 3V, V
S
= 5V
V
S
= ±5V
l
l
28
30
31
34
38
mA
mA
mA
Note 1: Stresses beyond those listed under Absolute Maximum Ratings
may cause permanent damage to the device. Exposure to any Absolute
Maximum Rating condition for extended periods may affect device
reliability and lifetime.
Note 2: This is the temperature coeffi cient of the internal feedback
resistors assuming a temperature independent external resistor (R
IN
).
Note 3: The input common mode voltage is the average of the voltages
applied to the external resistors (R
IN
). Specifi cation guaranteed for R
IN
229Ω.
Note 4: Distortion is measured differentially using a differential stimulus.
The input common mode voltage, the voltage at V
OCM
, and the voltage at
V
MID
are equal to one half of the total power supply voltage.
Note 5: Output common mode voltage is the average of the +OUT and
–OUT voltages. The output common mode voltage is equal to V
OCM
.
Note 6: The LT6604C-5 is guaranteed functional over the operating
temperature range –40°C to 85°C.
Note 7: The LT6604C-5 is guaranteed to meet 0°C to 70°C specifi cations
and is designed, characterized and expected to meet the extended
temperature limits, but is not tested at –40°C to 85°C. The LT6604I-5 is
guaranteed to meet specifi ed performance from –40°C to 85°C.
Note 8: Input pins (+IN, –IN, V
OCM
and V
MID
) are protected by steering
diodes to either supply. If the inputs should exceed either supply voltage,
the input current should be limited to less than 10mA. In addition, the
inputs +IN, –IN are protected by a pair of back-to-back diodes. If the
differential input voltage exceeds 1.4V, the input current should be limited
to less than 10mA
Note 9: Channel separation (the inverse of crosstalk) is measured by
driving a signal into one input while terminating the other input. Channel
separation is the ratio of the resulting output signal at the driven channel
to the output at the channel that is not driven.
LT6604-5
5
66045fa
FREQUENCY (MHz)
CMRR (dB)
90
80
70
60
50
40
30
0.01 1 10 100
66045 G05
0.1
V
S
= 5V
GAIN = 1
V
IN
= 1V
P-P
T
A
= 25°C
TYPICAL PERFORMANCE CHARACTERISTICS
Frequency Response Passband Gain and Group Delay
Passband Gain and Group Delay
Output Impedance vs Frequency Common Mode Rejection Ratio
Power Supply Rejection Ratio
Distortion vs Frequency Distortion vs Frequency
FREQUENCY (MHz)
0.1
–30
–20
–10
0
10
1 10 100
66045 G01
–40
–50
–70
–80
–60
GAIN (dB)
V
S
= 5V
GAIN = 1
T
A
= 25°C
FREQUENCY (MHz)
0
–9
GAIN (dB)
DELAY (ns)
–8
–6
–5
–4
1
–2
7
66045 G02
–7
–1
0
–3
20
30
50
60
70
90
40
100
110
120
80
2
4
1
3
56 8910
GAIN = 1
T
A
= 25°C
DELAY
GAIN
20
30
50
60
70
90
40
100
110
120
80
FREQUENCY (MHz)
07
66045 G03
2
4
1
3
56 8910
GAIN (dB)
DELAY (ns)
3
5
6
7
12
13
9
4
10
11
8
GAIN = 4
T
A
= 25°C
DELAY
GAIN
FREQUENCY (MHz)
0.1
0.1
OUTPUT IMPEDANCE (Ω)
1
10
100
1 10 100
66045 G04
V
S
= 5V
GAIN = 1
T
A
= 25°C
FREQUENCY (MHz)
0.01 1 10 1000.1
PSRR (dB)
80
70
60
50
40
30
20
10
0
66045 G06
V
S
= 3V
V
IN
= 200mV
P-P
T
A
= 25°C
V
+
TO DIFFOUT
FREQUENCY (MHz)
0.1
–100
DISTORTION (dBc)
–90
–80
–70
–60
–110
110
66045 G07
–50
DIFFERENTIAL INPUT,
2ND HARMONIC
DIFFERENTIAL INPUT,
3RD HARMONIC
SINGLE-ENDED INPUT,
2ND HARMONIC
SINGLE-ENDED INPUT,
3RD HARMONIC
V
S
= 3V, V
IN
= 2V
P-P
R
L
= 800Ω, T
A
= 25°C, GAIN = 1
FREQUENCY (MHz)
0.1
–100
DISTORTION (dBc)
–90
–80
–70
–60
–110
110
66045 G08
–50
DIFFERENTIAL INPUT,
2ND HARMONIC
DIFFERENTIAL INPUT,
3RD HARMONIC
SINGLE-ENDED INPUT,
2ND HARMONIC
SINGLE-ENDED INPUT,
3RD HARMONIC
V
S
= p5V, V
IN
= 2V
P-P
R
L
= 800Ω, T
A
= 25°C, GAIN = 1
LT6604-5
6
66045fa
INPUT COMMON MODE VOLTAGE
RELATIVE TO V
MID
(V)
–3
–110
–100
DISTORTION COMPONENT (dBc)
–90
–80
–70
–60
–40
–2
–1 0 1
66045 G11
23
–50
2ND HARMONIC,
V
S
= 3V
3RD HARMONIC,
V
S
= 3V
2ND HARMONIC,
V
S
= 5V
3RD HARMONIC,
V
S
= 5V
GAIN = 1, V
MID
= V
S
/2
2V
P-P
1MHz INPUT
R
L
= 800Ω, T
A
= 25°C
TYPICAL PERFORMANCE CHARACTERISTICS
Distortion vs Signal Level
Distortion
vs Input Common Mode Voltage
Distortion
vs Input Common Mode Voltage
Single Channel Supply Current
vs Total Supply Voltage
Transient Response, Differential
Gain = 1, Single-Ended Input,
Differential Output
Distortion vs Temperature
Distortion vs Output
Common Mode Voltage
INPUT LEVEL (V
P-P
)
0
–60
–50
–40
4
66045 G10
–70
–80
123 5
–90
–100
–110
DISTORTION (dBc)
3RD HARMONIC
5MHz INPUT
3RD HARMONIC
1MHz INPUT
2ND HARMONIC
5MHz INPUT
2ND HARMONIC
1MHz INPUT
V
S
= p5V
R
L
= 800Ω, T
A
= 25°C, GAIN = 1
INPUT COMMON MODE VOLTAGE
RELATIVE TO V
MID
(V)
–3
–110
–100
DISTORTION COMPONENT (dBc)
–90
–80
–70
–60
–40
–2
–1 0 1
66045 G12
23
–50
2ND HARMONIC,
V
S
= 3V
3RD HARMONIC,
V
S
= 3V
2ND HARMONIC,
V
S
= 5V
3RD HARMONIC,
V
S
= 5V
GAIN = 4, V
MID
= V
S
/2
2V
P-P
1MHz INPUT
R
L
= 800Ω, T
A
= 25°C
TOTAL SUPPLY VOLTAGE (V)
2
SUPPLY CURRENT (mA)
32
36
1210
66045 G13
28
24
4
6
8
20
30
34
26
22
T
A
= 85°C
T
A
= 25°C
T
A
= –40°C
66045 G14
OUT
200mV/DIV
OUT
+
200mV/DIV
IN
500mV/DIV
IN
+
100ns/DIV
1MHz INPUT LEVEL (V
P-P
)
0
20
0
–20
–40
–60
–80
–100
–120
35
66045 G15
12
467
OUTPUT LEVEL (dBV)
1dB PASSBAND GAIN
COMPRESSION POINTS
1MHz T
A
= 25°C
1MHz T
A
= 85°C
3RD HARMONIC
T
A
= 85°C
3RD HARMONIC
T
A
= 25°C
2ND HARMONIC
T
A
= 25°C
2ND HARMONIC
T
A
= 85°C
VOLTAGE V
OCM
TO V
MID
(V)
–1.5 –1.0
–100
DISTORTION COMPONENT (dBc)
–90
–80
–70
–60
–40
–0.5
0 0.5 1.0
66045 G16
1.5 2.52.0
–50
2ND HARMONIC, V
S
= 3V
3RD HARMONIC, V
S
= 3V
2ND HARMONIC, V
S
= 5V
3RD HARMONIC, V
S
= 5V
2ND HARMONIC, V
S
= p5V
3RD HARMONIC, V
S
= p5V
GAIN = 4
V
MID
= V
S
/2
T
A
= 25°C
0.5V
P-P
1MHz INPUT
R
L
= 800Ω
–110
Distortion vs Signal Level
–60
–50
–40
–70
–80
–90
–100
–110
INPUT LEVEL (V
P-P
)
0
DISTORTION (dBc)
1234
66045 G09
5
2ND HARMONIC,
5MHz INPUT
3RD HARMONIC,
5MHz INPUT
2ND HARMONIC,
1MHz INPUT
3RD HARMONIC,
1MHz INPUT
V
S
= 3V, R
L
= 800Ω
T
A
= 25°C, GAIN = 1

LT6604IUFF-5#TRPBF

Mfr. #:
Manufacturer:
Analog Devices Inc.
Description:
Differential Amplifiers Dual Differential Amplifier and 5MHz Lowpass Filter
Lifecycle:
New from this manufacturer.
Delivery:
DHL FedEx Ups TNT EMS
Payment:
T/T Paypal Visa MoneyGram Western Union