TSH330 STMicroelectronics, TSH330 Datasheet - Page 14

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TSH330

Manufacturer Part Number
TSH330
Description
Low noise, very large bandwidth op-amp
Manufacturer
STMicroelectronics
Datasheet

Specifications of TSH330

Bandwidth
1.1GHz (Gain=+2)
Quiescent Current
16.6 mA
Slew Rate
1800V/µs
Input Noise
1.3nV/√Hz
Distortion
SFDR = -78dBc (10MHz, 2Vp-p)

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The input noise of the instrumentation must be extracted from the measured noise value. The real output
noise value of the driver is:
The input noise is called the Equivalent Input Noise as it is not directly measured but is evaluated from the
measurement of the output divided by the closed loop gain (eNo/g).
After simplification of the fourth and the fifth term of
Measurement of the Input Voltage Noise eN
If we assume a short-circuit on the non-inverting input (R3=0), from
In order to easily extract the value of eN, the resistance R2 will be chosen to be as low as possible. In the
other hand, the gain must be large enough:
Measurement of the Negative Input Current Noise iNn
To measure the negative input current noise iNn, we set R3=0 and use
must be lower in order to decrease the thermal noise contribution:
Measurement of the Positive Input Current Noise iNp
To extract iNp from
must be chosen in order to keep its thermal noise contribution as low as possible against the iNp
contribution:
14/19
eNo
2
=
eN
Equation 3
2
g
2
eNo
+
iNn
eNo
=
, a resistance R3 is connected to the non-inverting input. The value of R3
2
=
R2
Measured
eN
2
+
2
iNp
g
2
2
+
R3=100W, gain: g=10
2
R3
iNn
R3=0, gain: g=100
R3=0, gain: g=10
instrumentation
2
2
Equation 2
g
R2
2
+
2
g
+
g 4kTR2
4kTR2
we obtain:
2
+
Equation 4
1
+
R2
------- -
R1
Equation 5
2
4kTR3
Noise Measurements
we can derive:
. This time the gain
Equation 3
Equation 4
Equation 5

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