Datasheet
Table Of Contents
- FEATURES
- APPLICATIONS
- DESCRIPTION
- ABSOLUTE MAXIMUM RATINGS
- OPERATING RATINGS
- 5V ELECTRICAL CHARACTERISTICS
- 3.3V ELECTRICAL CHARACTERISTICS
- 2.7V ELECTRICAL CHARACTERISTICS
- CONNECTION DIAGRAM
- TYPICAL PERFORMANCE CHARACTERISTICS
- APPLICATION INFORMATION
- OPTIMIZING PERFORMANCE
- SHUTDOWN CAPABILITY AND TURN ON/ OFF BEHAVIOR
- OVERLOAD RECOVERY AND SWING CLOSE TO RAILS
- SINGLE SUPPLY VIDEO APPLICATION
- DC COUPLED, SINGLE SUPPLY BASEBAND VIDEO AMPLIFIER/DRIVER
- AC COUPLED VIDEO
- SAG COMPENSATION
- HOW TO PICK THE RIGHT VIDEO AMPLIFIER
- CURRENT TO VOLTAGE CONVERSION (TRANSIMPEDANCE AMPLIFIER (TIA))
- TRANSIMPEDANCE AMPLIFIER NOISE CONSIDERATIONS
- OTHER APPLICATIONS
- CAPACITIVE LOAD
- EVALUATION BOARD
- Revision History

1
10 100 1000
FREQUENCY (MHz
-1
0
1
2
3
4
5
6
7
MAGNITUDE (dB)
2.7V
3.3V
5V
10k
100k 1M 10M 100M
FREQUENCY (Hz)
0
1
2
3
4
5
6
V
OUT
(V
PP
)
V
S
= 5V
A
V
= +2
R
L
= 150: to V
S
/2
THD < -30 dBc
1
10 100 1000
FREQUENCY (MHz)
-18
-15
-12
-9
-6
-3
0
3
6
NORMALIZED GAIN (dB)
V
OUT
= 0.25 V
PP
R
L
= 1 k: || C
L
to V
-
0 pF
5 pF
10 pF
20 pF
20 pF
0 pF
-40
-20 0 20 40 60 80
TEMPERATURE (°C)
80
90
100
110
120
130
140
-3 dB BW (MHz)
A
V
= +2
V
OUT
= 2 V
PP
3.3V
5V
100
1
10 100 1000
FREQUENCY (MHz)
-18
-15
-12
-9
-6
-3
0
3
6
NORMALIZED GAIN (dB)
1 k:
50:
150:
V
OUT
= 0.25 V
PP
R
L
TIED TO V
-
1
10
100
1000
FREQUENCY (MHz)
-18
-15
-12
-9
-6
-3
0
3
6
NORMALIZED GAIN (dB)
A
V
= +1
V
OUT
= 0.25 V
PP
GAIN
PHASE
2.7V
3.3V
5V
2.7V
3.3V
5V
-210
-180
-150
-120
-90
-60
-30
0
30
PHASE
(
°
)
LMH6601, LMH6601-Q1
www.ti.com
SNOSAK9E –JUNE 2006–REVISED MARCH 2013
TYPICAL PERFORMANCE CHARACTERISTICS (continued)
Unless otherwise noted, all data is with A
V
= +2, R
F
= R
G
= 604Ω, V
S
= 3.3V, V
OUT
= V
S
/2, SD tied to V
+
, R
L
= 150Ω to V
−
, T =
25°C.
Frequency Response for Various Loads Frequency Response for Various Supply Voltages
Figure 9. Figure 10.
−3 dB BW
vs.
Ambient Temperature Frequency Response for Various Cap Load
Figure 11. Figure 12.
Max Output Swing
vs.
Frequency Response for Various Supply Voltage Frequency
Figure 13. Figure 14.
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