Design and analysis of a two-stage OTA for sensor interface circuit

Author(s):  
Siti Nur Syuhadah Baharudin ◽  
Asral Bahari Jambek ◽  
Rizalafande Che Ismail
Author(s):  
J. Nurmi ◽  
M. Williams ◽  
P. Jarvilehto ◽  
K.-P. Estola ◽  
A. Ruha ◽  
...  

Integration ◽  
2004 ◽  
Vol 38 (2) ◽  
pp. 227-243 ◽  
Author(s):  
F. Roewer ◽  
U. Kleine ◽  
K.-E. Salzwedel ◽  
F. Mednikov ◽  
Ch. Pfaffinger ◽  
...  

2017 ◽  
Vol 2017 (HiTEN) ◽  
pp. 000103-000108 ◽  
Author(s):  
Emna Chabchoub ◽  
Franck Badets ◽  
Mohamed Masmoudi ◽  
Pascal Nouet ◽  
Frédérick Mailly

Abstract This paper presents resistive sensor interface circuit for high temperature applications. The presented circuit has a time-domain differential architecture. It is based on the use of voltage-controlled phase shifters to perform the signal conditioning in time domain which makes it more robust the environment's parameters, in particular the temperature. The output of the presented senor interface depends only on relative parameters of the circuit, therefore; a low sensitivity to temperature variations is achieved. The low variation of the circuit output versus temperature has been demonstrated by simulations and measurements of the fabricated prototype.


2021 ◽  
pp. 2140004
Author(s):  
Yanbo Chen ◽  
Changchun Dong ◽  
Bo Wu ◽  
Guokun He ◽  
Yunjie Li

Traditional mechanical keys are gradually replaced with touch keys. Capacitive touch keys have advantages in achieving higher sensitivity with a longer service life and lower cost. Hence, the capacitive touch key technology is widely used in consumer electronic products. In use of household electric appliances, such as electric kettle, induction cooker and exhaust hood, sometimes the water vapor would condense into visible moisture or even the water would splash out of the pot when overheated, which may lead to a falsely trigger of touch key. So, waterproof becomes a big challenge in household electric appliances. This paper analyzes how water affects capacitive touch key and proposes a waterproof capacitive touch key sensor interface circuit to overcome the challenge. Sensing of touch key capacitor would be influenced only when water covers more than two touch keys. Compensating channels working in certain strategy are used to decrease the influence of water. For the same water capacitor, the bigger threshold voltage, the bigger change of the counting number. A much smaller threshold voltage is better to further weak the effect of water. The circuit is implemented in a standard 110 nm CMOS process. The measured results show that the touch Signal to Noise and Water Disturb Ration (SNWDR) is 20.7 dB which proves that the proposed waterproof capacitive touch key sensor interface circuit is effective against water splash.


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