The TSV619x family of single and dual
operational amplifiers offers low voltage, low
power operation and rail-to-rail input and output.
The devices also feature an ultra-low input bias
current as well as a low input offset voltage.
The TSV619x have a gain bandwidth product of
450 kHz while consuming only 10 µA at 5 V. They
must be used in a gain configuration (equal or
above +4 or -3).
These features make the TSV619x family ideal
for sensor interfaces, battery supplied and
portable applications, as well as active filtering.
October 2010Doc ID 17974 Rev 11/17
www.st.com
17
Absolute maximum ratings and operating conditionsTSV619x, TSV619xA
1 Absolute maximum ratings and operating conditions
Table 1.Absolute maximum ratings
SymbolParameterValueUnit
(3)
(1)
(7)
(2)
(6)
(8)
(4)(5)
V
CC-
6V
±V
CC
-0.2 to V
+0.2V
CC+
V
°C/W
4kV
200V
1.5kV
V
CC
V
V
T
stg
Supply voltage
Differential input voltage
id
Input voltage
in
Storage temperature-65 to +150°C
Thermal resistance junction to ambient
SC70-5205
R
thja
SOT23-5250
MiniSO-8190
SO-8125
T
Maximum junction temperature150°C
j
HBM: human body model
ESD
MM: machine model
CDM: charged device model
Latch-up immunity200mA
1. All voltage values, except differential voltage are with respect to network ground terminal.
2. Differential voltages are the non-inverting input terminal with respect to the inverting input terminal.
3. Vcc-Vin must not exceed 6 V.
4. Short-circuits can cause excessive heating and destructive dissipation.
5. Rth are typical values.
6. Human body model: 100 pF discharged through a 1.5 kΩ resistor between two pins of the device, done for
all couples of pin combinations with other pins floating.
7. Machine model: a 200 pF cap is charged to the specified voltage, then discharged directly between two
pins of the device with no external series resistor (internal resistor < 5 Ω), done for all couples of pin
combinations with other pins floating.
8. Charged device model: all pins plus package are charged together to the specified voltage and then
discharged directly to ground.
Figure 11. Distortion + noise vs. frequencyFigure 12. Distortion + noise vs. output
voltage
10
Vcc=1.5V
Ω
Rl=10k
1
THD + N (%)
0.1
0.01
100100010000
Ω
Vcc=1.5V
Vcc=1.5V
Rl=100k
Ω
Ω
THD + N (%)
Rl=100kohms
Vcc=1.5V
Rl=10kohms
Vcc=5.5V
Rl=10kohms
Vcc=5.5V
Rl=100kohms
Output Voltage (Vpp)
f=1kHz
Gain=5
BW=22kHz
Vicm=Vcc/2
Doc ID 17974 Rev 17/17
Application informationTSV619x, TSV619xA
0.00.01.01.02.02.03.03.04.04.05.05.0
-1.0-1.0
-0.8-0.8
-0.6-0.6
-0.4-0.4
-0.2-0.2
0.00.0
0.20.2
0.40.4
0.60.6
0.80.8
1.01.0
1.21.2
1.41.4
Input Offset Voltage (mV)
Input Common Mode Voltage (V)
3 Application information
3.1 Operating voltages
The TSV619x can operate from 1.5 to 5.5 V. Their parameters are fully specified for 1.8, 3.3
and 5 V power supplies. However, the parameters are very stable in the full V
several characterization curves show the TSV619x characteristics at 1.5 V. Additionally, the
main specifications are guaranteed in extended temperature ranges from -40° C to +85° C.
3.2 Rail-to-rail input
The TSV619x are built with two complementary PMOS and NMOS input differential pairs.
The devices have a rail-to-rail input, and the input common mode range is extended from
V
-0.1 V to V
CC-
the transition region, the performance of CMRR, PSRR, V
(as shown in Figure 13 and Figure 14 for V
Figure 13. Input offset voltage vs input
common mode at V
1.51.5
+0.1 V. The transition between the two pairs appears at V
CC+
= 1.5 V
CC
and THD is slightly degraded
vs. V
io
icm
io
).
Figure 14. Input offset voltage vs input
common mode at V
CC
CC
= 5 V
range and
-0.7 V. In
CC+
1.01.0
0.50.5
0.00.0
-0.5-0.5
Input Offset Voltage (mV)
-1.0-1.0
-1.5-1.5
0.00.00.20.20.40.40.60.60.80.81.01.01.21.21.41.4
Input Common Mode Voltage (V)
The device is guaranteed without phase reversal.
3.3 Rail-to-rail output
The operational amplifiers’ output levels can go close to the rails: less than 35 mV above
GND rail and less than 35 mV below V
3.4 PCB layouts
For correct operation, it is advised to add 10 nF decoupling capacitors as close as possible
8/17Doc ID 17974 Rev 1
to the power supply pins.
rail when connected to 10 kΩ load to VCC/2.
CC
TSV619x, TSV619xAApplication information
3.5 Macromodel
An accurate macromodel of the TSV619x is available on STMicroelectronics’ web site at
www.st.com. This model is a trade-off between accuracy and complexity (that is, time
simulation) of the TSV619x operational amplifiers. It emulates the nominal performances of
a typical device within the specified operating conditions mentioned in the datasheet. It also
helps to validate a design approach and to select the right operational amplifier, but it does not replace on-board measurements.
Doc ID 17974 Rev 19/17
Package informationTSV619x, TSV619xA
4 Package information
In order to meet environmental requirements, ST offers these devices in different grades of
ECOPACK
specifications, grade definitions and product status are available at: www.st.com.
ECOPACK
®
packages, depending on their level of environmental compliance. ECOPACK®
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