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OPA2836 View Datasheet(PDF) - Texas Instruments

Part NameDescriptionManufacturer
OPA2836 Very-Low-Power, Rail-to-Rail Out, Negative Rail In, Voltage-Feedback Operational Amplifiers TI
Texas Instruments TI
OPA2836 Datasheet PDF : 59 Pages
1 2 3 4 5 6 7 8 9 10 Next Last
OPA836, OPA2836
SLOS712I – JANUARY 2011 – REVISED OCTOBER 2016
www.ti.com
7.5 Thermal Information: OPA2836
OPA2836
THERMAL METRIC(1)
D (SOIC-8)
(DGS) VSSOP,
MSOP-10
(RUN)
WQFN-10
RMC
(UQFN-10)
UNIT
8 PINS
10 PINS
10 PINS
10 PINS
RθJA
RθJCtop
RθJB
ψJT
ψJB
Junction-to-ambient thermal resistance
Junction-to-case (top) thermal resistance
Junction-to-board thermal resistance
Junction-to-top characterization parameter
Junction-to-board characterization parameter
150.1
206
145.8
143.2
°C/W
83.8
75.3
75.1
49.0
°C/W
68.4
96.2
38.9
61.9
°C/W
33.0
12.9
13.5
3.3
°C/W
67.9
94.6
104.5
61.9
°C/W
(1) For more information about traditional and new thermal metrics, see Semiconductor and IC Package Thermal Metrics (SPRA953).
7.6 Electrical Characteristics: VS = 2.7 V
at VS+ = +2.7 V, VS– = 0 V, VOUT = 1 VPP, RF = 0 Ω, RL = 2 kΩ, G = 1 V/V, input and output referenced to mid-supply, VIN_CM =
mid-supply – 0.5 V. TA = 25°C, unless otherwise noted.
PARAMETER
TEST CONDITIONS
MIN
TYP
MAX UNIT
TEST
LEVEL (1)
AC PERFORMANCE
Small-signal bandwidth
Gain-bandwidth product
Large-signal bandwidth
Bandwidth for 0.1-dB flatness
Slew rate, rise
Slew rate, fall
Rise time
Fall time
Settling time to 1%, rise
Settling time to 1%, fall
Settling time to 0.1%, rise
Settling time to 0.1%, fall
Settling time to 0.01%, rise
Settling time to 0.01%, fall
Overshoot/Undershoot
Second-order harmonic distortion
Third-order harmonic distortion
Second-order intermodulation distortion
Third-order intermodulation distortion
Input voltage noise
VOUT = 100 mVPP, G = 1
VOUT = 100 mVPP, G = 2
VOUT = 100 mVPP, G = 5
VOUT = 100 mVPP, G = 10
VOUT = 100 mVPP, G = 10
VOUT = 1 VPP, G = 2
VOUT = 1 VPP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
VOUT = 1 VSTEP, G = 2
f = 10 kHz, VIN_CM = mid-supply – 0.5 V
f = 100 kHz, VIN_CM = mid-supply – 0.5 V
f = 1 MHz, VIN_CM = mid-supply – 0.5 V
f = 10 kHz, VIN_CM = mid-supply – 0.5 V
f = 100 kHz, VIN_CM = mid-supply – 0.5 V
f = 1 MHz, VIN_CM = mid-supply – 0.5 V
f = 1 MHz, 200-kHz Tone Spacing,
VOUT Envelope = 1 VPP
VIN_CM = mid-supply – 0.5 V
f = 1 MHz, 200-kHz Tone Spacing,
VOUT Envelope = 1 VPP
VIN_CM = mid-supply – 0.5 V
f = 100 KHz
200
100
26
11
110
60
25
260
240
4
4.5
15
15
30
25
50
45
5%/3%
–133
–120
–84
–137
–130
–105
–90
–90
4.6
MHz
C
MHz
C
MHz
C
MHz
C
V/µs
C
V/µs
C
ns
C
ns
C
ns
C
ns
C
ns
C
ns
C
ns
C
ns
C
C
C
dBc
C
C
C
dBc
C
C
dBc
C
dBc
C
nV/Hz
C
Voltage noise 1/f corner frequency
215
Hz
C
Input current noise
f = 1 MHz
0.75
pA/Hz
C
(1) Test levels (all values set by characterization and simulation): (A) 100% tested at 25°C; over temperature limits by characterization and
simulation. (B) Not tested in production; limits set by characterization and simulation. (C) Typical value only for information.
8
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