Datasheet

TLE202x-Q1, TLE202xA-Q1
EXCALIBUR HIGH-SPEED LOW-POWER PRECISION
OPERATIONAL AMPLIFIERS
SGLS199B − JANUARY 2004 − REVISED APRIL 2008
6
POST OFFICE BOX 655303 DALLAS, TEXAS 75265
TLE2021 electrical characteristics at specified free-air temperature, V
CC
= ±15 V (unless otherwise
noted)
PARAMETER
T
TLE2021-Q1 TLE2021A-Q1
UNIT
PARAMETER TEST CONDITIONS
T
A
MIN TYP MAX MIN TYP MAX
UNIT
V
Input offset voltage
25°C 120 500 80 300
V
V
IO
Input offset voltage
Full range 700 450
µV
α
VIO
Temperature
coefficient of input
offset voltage
Full range 2 2 µV/°C
Input offset voltage
long-term drift
(see Note 4)
V
IC
= 0, R
S
= 50
25°C
0.006 0.006 µV/mo
I
Input offset current
25°C 0.2 6 0.2 6
nA
I
IO
Input offset current
Full range 10 10
nA
I
Input bias current
25°C 25 70 25 70
nA
I
IB
Input bias current
Full range 90 90
nA
V
Common-mode input
25°C
−15
to
13.5
−15.3
to
14
−15
to
13.5
−15.3
to
14
V
V
ICR
Common mode
input
voltage range
R
S
= 50
Full range
−15
to
13.2
−15
to
13.2
V
V
Maximum positive
peak output voltage
25°C 14 14.3 14 14.3
V
V
OM +
peak output voltage
swing
Full range 13.8 13.8
V
V
Maximum negative
peak output voltage
R
L
= 10 k
25°C −13.7 −14.1 −13.7 −14.1
V
V
OM
peak output voltage
swing
Full range −13.6 −13.6
V
A
Large-signal
differential voltage
V ±10 V
R 10 k
25°C 1 6.5 1 6.5
V/ V
A
VD
differential voltage
amplification
V
O
= ±10 V, R
L
= 10 k
Full range
0.5 0.5
V/µV
CMRR
Common-mode
V V min
R 50
25°C 100 115 100 115
dB
CMRR
Common mode
rejection ratio
V
IC
= V
ICR
min, R
S
= 50
Full range
96 96
dB
k
Supply-voltage
rejection ratio
25°C 105 120 105 120
dB
k
SVR
rejection ratio
(V
CC
±
/V
IO
)
V
CC
±
= ±2.5 V to ±15 V
Full range 100 100
dB
I
Supply current
25°C 200 350 200 350
A
I
CC
Supply current
Full range 350 350
µA
I
CC
Supply current
change over
operating temperature
range
V
O
= 0, No load
Full range 10 10 µA
Full range is −40°C to 125°C.
NOTE 4: Typical values are based on the input offset voltage shift observed through 168 hours of operating life test at T
A
= 150°C extrapolated
to T
A
= 25°C using the Arrhenius equation and assuming an activation energy of 0.96 eV.