TS902
RAIL TO RAIL
CMOS DUAL
OPERATIONAL AMPLIFIER (WITH
STANDBY
POSITION)
s
RAIL TO RAIL INPUT AND OUTPUT VOLT-
s
s
s
s
s
s
AGE RANGES
STANDBY
POSITION : REDUCED CON-
SUMPTION (0.5µA) AND HIGH IMPEDANCE
OUTPUTS
SINGLE (OR DUAL) SUPPLY OPERATION
FROM
2.7V TO 16V
EXTREMELY LOW INPUT BIAS CURRENT :
1pA
typ
LOW INPUT OFFSET VOLTAGE :
5mV max.
SPECIFIED FOR
600Ω
AND
100Ω
LOADS
LOW SUPPLY CURRENT : 200µA/Ampli
(V
CC
= 3V)
SPECIFICATION
DESCRIPTION
The TS902 is a RAIL TO RAIL CMOS dual opera-
tional amplifier designed to operate with a single
or dual supply voltage.
The input voltage range V
icm
includes the two sup-
ply rails V
CC
+
and V
CC
-
.
The output reaches :
u
V
CC
-
+50mV V
CC
+
-50mV with R
L
= 10kΩ
u
V
CC
-
+350mV V
CC
+
-400mV with R
L
= 600Ω
This product offers a broad supply voltage operat-
ing range from 2.7V to 16V and a supply current of
only 200µA/amp. (V
CC
= 3V).
Source and sink output current capability is typi-
cally 40mA (at V
CC
= 3V), fixed by an internal limi-
tation circuit.
The TS902 can be put on STANDBY position
(only 0.5µA and high impedance outputs).
ORDER CODE
Package
Part Number
TS902I
Temperature Range
D
-40, +125°C
•
N =
Dual in Line Package (DIP)
D =
Small Outline Package (SO) - also available in Tape & Reel (DT)
s
SPICE MACROMODEL
INCLUDED IN THIS-
D
SO14
(Plastic Micropackage)
PIN CONNECTIONS
(top view)
Standby 1
Output 1
N.C.
Inverting Input 1
Non-inverting input 1
N.C.
2
3
4
5
6
14
13
12
V
CC
+
Output 2
N.C.
Inverting Input 2
Non-inverting Input 2
N.C.
V
CC
-
-
+
-
+
11
10
9
8
N.C. 7
December 2001
1/8
TS902
SCHEMATIC DIAGRAM
(1/2 TS902)
V
CC
Standby
Standby
Non-inverting
Input
Internal
Vref
Inverting
Input
Standby
Output
Standby
V
CC
STANDBY POSITION
V
CC
HIGH IMPEDANCE OUTPUT IN STANDBY MODE
1/2
TS902
1
Vsby
STBY ON
V
CC
STBY OFF
V
CC
V
CC
ABSOLUTE MAXIMUM RATINGS
Symbol
V
CC
V
id
V
i
I
in
I
o
T
oper
T
stg
Supply voltage
1)
Differential Input Voltage
2)
Input Voltage
3)
Current on Inputs
Current on Outputs
Operating Free Air Temperature Range
TS902I
Storate Temperature
Parameter
Value
18
±18
-0.3 to 18
±50
±130
-40 to + 125
-65 to +150
Unit
V
V
V
mA
mA
°C
°C
1. All voltages values, except differential voltage are with respect to network ground terminal.
2. Differential voltagesare non-inverting input terminal with respect to the inverting input terminal.
3. The magnitude of input and output voltages must never exceed V
CC
+
+0.3V.
OPERATING CONDITIONS
Symbol
V
CC
V
icm
2/8
Supply voltage
Common Mode Input Voltage Range
Parameter
Value
2.7 to 16
V
CC
-
-0.2 to V
CC
+
+0.2
Unit
V
V
TS902
ELECTRICAL CHARACTERISTICS
V
CC+
= 10V, V
cc
-
= 0V, R
L
, C
L
connected to V
CC/2
, Standby OFF, T
amb
= 25°C (unless otherwise specified)
Symbol
V
io
∆V
io
I
io
I
ib
I
CC
CMR
SVR
A
vd
Parameter
Input Offset Voltage (V
ic
= V
o
= V
CC/2
)
T
min.
≤
T
amb
≤
T
max.
Input Offset Voltage Drift
Input Offset Current
1)
T
min.
≤
T
amb
≤
T
max.
Input Bias Current
1)
T
min.
≤
T
amb
≤
T
max.
Supply Current (per amplifier, A
VCL
= 1, no load)
T
min.
≤
T
amb
≤
T
max.
Common Mode Rejection Ratio
V
ic
= 3 to 7V, V
o
= 5V
V
ic
= 0 to 10V, V
o
= 5V
Supply Voltage Rejection Ratio (V
CC
+
= 5 to 10V, V
o
= V
CC/2
)
Large Signal Voltage Gain (R
L
= 10kΩ, V
o
= 2.5V to 7.5V)
T
min.
≤
T
amb
≤
T
max.
High Level Output Voltage (V
id
= 1V)
V
OH
T
min.
≤
T
amb
≤
T
max.
Low Level Output Voltage (V
id
= -1V)
V
OL
T
min.
≤
T
amb
≤
T
max.
Output Short Circuit Current (V
id
= ±1V)
Gain Bandwith Product
(A
VCL
= 100, R
L
= 10kΩ, C
L
= 100pF, f = 100kHz)
Slew Rate
(A
VCL
= 1, R
L
= 10kΩ, C
L
= 100pF, V
i
= 2.5V to 7.5V)
Phase Margin
Equivalent Input Noise Voltage (R
s
= 100Ω, f = 1kHz)
Total Harmonic Distortion
(A
VCL
= 1, R
L
= 10kΩ, C
L
= 100pF, V
o
= 4.75V to 5.25V, f = 1kHz)
Input Capacitance
Channel Separation (f = 1kHz)
R
L
=
R
L
=
R
L
=
R
L
=
R
L
=
R
L
=
R
L
=
R
L
=
R
L
=
R
L
=
10kΩ
600Ω
100Ω
10kΩ
600Ω
10kΩ
600Ω
100Ω
10kΩ
600Ω
+
Min.
TS902
TS902
Typ.
Max.
10
12
Unit
mV
µV/°C
5
1
1
400
100
200
150
300
600
700
pA
pA
µA
dB
dB
V/mV
90
75
90
15
10
9.85
9
9.8
9
50
650
2300
150
800
60
9.95
9.35
7.8
V
mV
150
900
I
o
GBP
SR
φm
en
THD
C
in
V
O1
/V
O2
Source (V
o
= V
CC
)
Sink (V
o
= V
CC
)
60
60
1.4
1
40
30
0.02
1.5
120
mA
MHz
V/µs
Degrees
nV/√Hz
%
pF
dB
1. Maximum values including unavoidable inaccuracies of the industrial test
STANDBY MODE
V
CC+
= 10V, V
cc
-
= 0V, T
amb
= 25°C (unless otherwise specified)
Symbol
V
inSBY/ON
V
inSBY/OFF
I
CC SBY
Parameter
Pin 1 Threshold Voltage for STANDBY ON
Pin 1 Threshold Voltage for STANDBY OFF
Total Consumption in Standby Position (STANDBY ON)
Min.
Typ.
8.2
8.5
1
Max.
Unit
V
V
µA
3/8
TS902
TYPICAL CHARACTERISTICS
Figure 1a :
Supply Current (each amplifier)
vs Supply Voltage
600
500
400
300
200
100
Figure 3a :
High Level Output Voltage vs High
Level Output Current
5
SUPPLY CURRENT, I
CC
( mA)
T
amb
= 25°C
A
VCL
= 1
V
o
= V
CC
/ 2
Standby OFF
OUTPUT VOLTAGE, V
OH
(V)
4
3
2
1
0
T
amb
= 25
°
C
V
id
= 100mV
Standby OFF
V
CC
= +5V
V
CC
= +3V
0
4
8
12
16
-70
-56
-42
-28
-14
0
SUPPLY VOLTAGE, V
CC
(V)
OUTPUT CURRENT, I
OH
(mA)
Figure 1b :
Supply Current (each amplifier)
vs Supply Voltage (in STANDBY
mode)
50
40
30
20
10
0
Figure 3b :
High Level Output Voltage vs High
Level Output Current
20
OUTPUT VOLTAGE, V
OH
(V)
SUPPLY CURRENT, I
CC
(
m
A)
T
amb
= 25°C
A
VCL
= 1
Standby ON
16
12
8
4
0
T
amb
= 25
°
C
V
id
= 100mV
Standby OFF
V
CC
= +16V
V
CC
= +10V
4
8
12
CC
(V)
16
-70
-56
-42
-28
-14
0
SUPPLY VOLTAGE, V
OUTPUT CURRENT, I
OH
(mA)
Figure 2 :
100
Input Bias Current vs Temperature
Figure 4a :
Low Level Output Voltage vs Low
Level Output Current
INPUT BIAS CURRENT, I
ib
(pA)
5
OUTPUT VOLTAGE, V
OL
(V)
V
CC
= 10V
V
i
= 5V
No load
Standby OFF
4
3
2
1
T
amb
= 25
°
C
V
id
= 100mV
Standby OFF
10
V
CC
= +3V
V
CC
= +5V
1
25
50
75
100
125
0
14
28
42
56
70
TEMPERATURE, T
amb
(
°
C)
OUTPUT CURRENT, I
OL
(mA)
4/8
TS902
Figure 4b :
Low Level Output Voltage vs Low
Level Output Current
10
OUTPUT VOLTAGE, V
OL
(V)
T
amb
= 25
°
C
V
id
= 100mV
Standby OFF
Figure 6a :
Gain Bandwidth Product vs Supply
Voltage
GAIN BANDW. PROD., GBP (kHz)
1800
1400
1000
600
200
8
6
4
2
V
V
= 16V
CC
T
amb
= 25°C
R
L
= 10k
W
C
L
= 100pF
Standby OFF
= 10V
CC
0
14
28
42
56
70
0
4
8
12
16
OUTPUT CURRENT, I
OL
(mA)
SUPPLY VOLTAGE, V
CC
(V)
Figure 5a :
Gain and Phase vs Frequency
Figure 6b :
Gain Bandwidth Product vs Supply
Voltage
GAIN BANDW. PROD., GBP (kHz)
50
40
GAIN (dB)
30
20
10
0
-10
PHASE
T
amb
= 25°C
V
CC
= 10V
R
L
= 10k
W
C
L
= 100pF
A
VCL
= 100
Standby OFF
GAIN
Phase
Margin
1800
1400
1000
600
200
0
45
90
135
180
Gain
Bandwidth
Product
PHASE (Degrees)
0
T
amb
= 25°C
R
L
= 600W
C
L
= 100pF
Standby OFF
10
2
10
3
10
10
10
FREQUENCY, f (Hz)
4
5
6
10
7
4
8
12
16
SUPPLY VOLTAGE, V
CC
(V)
Figure 5b :
Gain and Phase vs Frequency
50
40
GAIN (dB)
30
20
10
0
-
10
PHASE
T
amb
= 25°C
V
CC
= 10V
R
L
= 600W
C
L
= 100pF
A
VCL
= 100
Standby OFF
2
3
Figure 7a :
Phase Margin vs Supply Voltage
PHASE MARGIN,
f
m (Degrees)
60
50
40
30
20
0
4
8
12
16
T
amb
= 25°C
R
L
= 10kW
C
L
= 100pF
Standby OFF
GAIN
45
Phase
Margin
Gain
Bandwidth
Product
90
135
180
10
10
10
10
10
FREQUENCY, f (Hz)
4
5
6
10
7
PHASE (Degrees)
0
SUPPLY VOLTAGE, V
CC
(V)
5/8