NOTE: (1) Stresses above these ratings may cause permanent damage.
Exposure to absolute maximum conditions for extended periods may degrade
device reliability.
ELECTROSTATIC
DISCHARGE SENSITIVITY
This integrated circuit can be damaged by ESD. Texas Instru-
ments recommends that all integrated circuits be handled with
appropriate precautions. Failure to observe proper handling
and installation procedures can cause damage.
ESD damage can range from subtle performance degradation to
complete device failure. Precision integrated circuits may be more
susceptible to damage because very small parametric changes
could cause the device not to meet its published specifications.
OPA3684 RELATED PRODUCTS
SINGLES
OPA684
OPA691
OPA685
OPA692
DUALS
OPA2684
OPA2691
—
—
TRIPLES
—
OPA3691
—
OPA3692
QUADS
OPA4684
—
—
—
FEATURES
Low-Power CFB
plus
High Slew Rate CFB
> 500MHz CFB
Fixed-Gain Video Buffers
PACKAGE/ORDERING INFORMATION
PRODUCT
OPA3684
PACKAGE-LEAD
SO-14
PACKAGE
DESIGNATOR
(1)
D
SPECIFIED
TEMPERATURE
RANGE
–40°C to +85°C
PACKAGE
MARKING
OPA3684
ORDERING
NUMBER
OPA3684ID
OPA3684IDR
OPA3684IDBQT
OPA3684IDBQR
TRANSPORT
MEDIA, QUANTITY
Rails, 58
Tape and Reel, 2500
Tape and Reel, 250
Tape and Reel, 2500
"
OPA3684
"
SSOP-16
"
DBQ
"
–40°C to +85°C
"
OPA3684
"
"
"
"
"
NOTE: (1) For the most current specifications, and package information, refer to our web site at www.ti.com.
PIN CONFIGURATION
Top View
SO
Top View
SSOP
DIS A
DIS B
DIS C
+V
S
+Input A
–Input A
Output A
1
2
C
3
4
5
A
6
7
B
14 Output C
13 –Input C
12 +Input C
11 –V
S
10 +Input B
9
8
–Input B
Output B
DIS A
DIS B
DIS C
+V
S
+Input A
–Input A
Output A
NC
1
2
C
3
4
5
A
6
7
8
B
16 Output C
15 –Input C
14 +Input C
13 –V
S
12 +Input B
11 –Input B
10 Output B
9
NC
2
OPA3684
www.ti.com
SBOS241A
ELECTRICAL CHARACTERISTICS: V
S
=
±
5V
Boldface
limits are tested at
+25
°
C.
R
F
= 800Ω, R
L
= 100Ω, and G = +2, unless otherwise noted.
OPA3684ID, IDBQ
TYP
PARAMETER
AC PERFORMANCE (see Figure 1)
Small-Signal Bandwidth (V
O
= 0.5Vp-p)
CONDITIONS
G = +1, R
F
= 800Ω
G = +2, R
F
= 800Ω
G = +5, R
F
= 800Ω
G = +10, R
F
= 800Ω
G = +20, R
F
= 800Ω
G = +2, V
O
= 0.5Vp-p, R
F
= 800Ω
R
F
= 800Ω, V
O
= 0.5Vp-p
G = +2, V
O
= 4Vp-p
G = –1, V
O
= 4V Step
G = +2,V
O
= 4V Step
G = +2, V
O
= 0.5V Step
G = +2, V
O
= 4VStep
G = +2, f = 5MHz, V
O
= 2Vp-p
R
L
= 100Ω
R
L
≥
1kΩ
R
L
= 100Ω
R
L
≥
1kΩ
f > 1MHz
f > 1MHz
f > 1MHz
G = +2, NTSC, V
O
= 1.4Vp, R
L
= 150Ω
G = +2, NTSC, V
O
= 1.4Vp, R
L
= 150Ω
2 Channels, f = 5MHz
3rd-Channel Measured
V
O
= 0V, R
L
= 1kΩ
V
CM
= 0V
V
CM
= 0V
V
CM
= 0V
V
CM
= 0V
V
CM
= 0V
V
CM
= 0V
+25
°
C
250
170
138
120
95
19
1.4
90
780
750
3
6.8
–67
–82
–70
–84
3.7
9.4
17
0.04
0.02
70
MIN/MAX OVER TEMPERATURE
+25
°
C
(1)
0
°
C to
70
°
C
(2)
–40
°
C to
+85
°
C
(2)
UNITS
MHz
MHz
MHz
MHz
MHz
MHz
dB
MHz
V/µs
V/µs
ns
ns
dBc
dBc
dBc
dBc
nV/√Hz
pA/√Hz
pA/√Hz
%
deg
dB
MIN/
TEST
MAX
LEVEL
(3)
typ
min
typ
typ
typ
min
max
typ
min
min
typ
typ
max
max
max
max
max
max
max
typ
typ
typ
C
B
C
C
C
B
B
C
B
B
C
C
B
B
B
B
B
B
B
C
C
C
120
118
117
Bandwidth for 0.1dB Gain Flatness
Peaking at a Gain of +1
Large-Signal Bandwidth
Slew Rate
Rise-and-Fall Time
Harmonic Distortion
2nd-Harmonic
3rd-Harmonic
Input Voltage Noise
Noninverting Input Current Noise
Inverting Input Current Noise
Differential Gain
Differential Phase
All Hostile Crosstalk
DC PERFORMANCE
(4)
Open-Loop Transimpedance Gain (Z
OL
)
Input Offset Voltage
Average Offset Voltage Drift
Noninverting Input Bias Current
Average Noninverting Input Bias Current Drift
Inverting Input Bias Current
Average Inverting Input Bias Current Drift
INPUT
Common-Mode Input Range
(5)
(CMIR)
Common-Mode Rejection Ratio (CMRR)
Noninverting Input Impedance
Inverting Input Resistance (R
I
)
OUTPUT
Voltage Output Swing
Current Output, Sourcing
Current Output, Sinking
Closed-Loop Output Impedance
DISABLE (Disabled LOW)
Power-Down Supply Current (+V
S
)
Disable Time
Enable Time
Off Isolation
Output Capacitance in Disable
Enable Voltage
Disable Voltage
Control Pin Input Bias Current (DIS)
POWER SUPPLY
Specified Operating Voltage
Maximum Operating Voltage Range
Max Quiescent Current
Min Quiescent Current
Power-Supply Rejection Ratio (–PSRR)
TEMPERATURE RANGE
Specification: D, DBQ
Thermal Resistance,
θ
JA
D
SO-14
DBQ SSOP-16
16
4.8
675
680
14
5.9
650
660
14
6.3
575
650
–59
–66
–66
–82
4.1
11
18
–59
–65
–65
–81
4.2
12
18.5
–58
–65
–65
–81
4.4
12.5
19
355
±1.5
±5.0
±5.0
±
3.9
±
12
±
17
±
3.65
53
160
155
±4.5
±12
±13.5
±25
±18.5
±35
±3.65
52
153
±4.7
±12
±14
±30
±19.5
±40
±3.6
52
kΩ
mV
µV/°C
µA
nA/°C
µA
nA°/C
V
dB
kΩ || pF
Ω
V
mA
mA
Ω
µA
ms
ns
dB
pF
V
V
µA
V
V
mA
mA
dB
°C
°C/W
°C/W
min
max
max
max
max
max
max
min
min
typ
typ
min
min
min
typ
max
typ
typ
typ
typ
min
max
max
typ
max
max
min
typ
typ
typ
typ
A
A
B
A
B
A
B
A
A
C
C
A
A
A
C
A
C
C
C
C
A
A
A
C
A
A
A
A
C
C
C
V
CM
= 0V
Open-Loop, DC
1kΩ Load
V
O
= 0
V
O
= 0
G = +2, f = 100kHz
V
DIS
= 0 (all channels)
V
IN
= +1V, G = +2
V
IN
= +1V, G = +2
G = +2, 5MHz
±3.75
60
50 || 2
4.0
±4.1
160
–120
0.006
–300
4
40
70
1.7
3.4
1.8
80
±5
±
3.9
120
–100
±3.9
115
–95
±3.8
110
–90
–500
–580
–600
V
DIS
= 0V/Channel
3.5
1.7
120
3.6
1.6
130
3.7
1.5
135
V
S
=
±5V/per
Channel
V
S
=
±5V/per
Channel
Input Referred
±
6
1.8
1.6
54
1.7
1.7
60
–40 to +85
±6
1.85
1.55
53
±6
1.85
1.45
53
Junction-to-Ambient
100
100
NOTES: (1) Junction temperature = ambient for +25°C tested specifications. (2) Junction temperature = ambient at low temperature limit, junction temperature = ambient
+2°C at high temperature limit for over temperature tested specifications. (3) Test levels: (A) 100% tested at +25°C. Over-temperature limits by characterization and
simulation. (B) Limits set by characterization and simulation. (C) Typical value only for information. (4) Current is considered positive out-of-node. V
NOTES: (1) Junction temperature = ambient for +25°C tested specifications. (2) Junction temperature = ambient at low temperature limit, junction temperature = ambient
+1°C at high temperature limit for over temperature tested specifications. (3) Test levels: (A) 100% tested at +25°C. Over-temperature limits by characterization and
simulation. (B) Limits set by characterization and simulation. (C) Typical value only for information. (4) Current is considered positive out-of-node. V
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