Jianqiang HanXiaofei WangTianhong YanYan LiMeixuan Song
Microcantilever with integrated piezoresistor has been applied to in situ surface stress measurement in the field of biochemical sensors. It is well known that piezoresistive cantilever-based sensors are sensitive to ambient temperature changing due to highly temperature-dependent piezoresistive effect and mismatch in thermal expansion of composite materials. This paper proposes a novel method of temperature drift compensation for microcantilever-based sensors with a piezoresistive full Wheatstone bridge integrated at the clamped ends by subtracting the amplified output voltage of the reference cantilever from the output voltage of the sensing cantilever through a simple temperature compensating circuit. Experiments show that the temperature drift of microcantilever sensors can be significantly reduced by the method.
Adisorn TuantranontTanom LomasKata JaruwongrungseeApichai JomphoakAnurat Wisitsoraat
Fabian T. GoerickeJungchul LeeWilliam P. King
M. H. LiuZhiwu WangPingping JiangGuozheng Yan