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用于光声光谱的飞米级位移的压阻式传感

Piezotransistive transduction of femtoscale displacement for photoacoustic spectroscopy.

作者信息

Talukdar Abdul, Faheem Khan M, Lee Dongkyu, Kim Seonghwan, Thundat Thomas, Koley Goutam

机构信息

Department of Electrical Engineering, University of South Carolina, Columbia, South Carolina 29208, USA.

Department of Chemical and Materials Engineering, University of Alberta, Edmonton, Alberta T6G 2V4, Canada.

出版信息

Nat Commun. 2015 Aug 10;6:7885. doi: 10.1038/ncomms8885.

Abstract

Measurement of femtoscale displacements in the ultrasonic frequency range is attractive for advanced material characterization and sensing, yet major challenges remain in their reliable transduction using non-optical modalities, which can dramatically reduce the size and complexity of the transducer assembly. Here we demonstrate femtoscale displacement transduction using an AlGaN/GaN heterojunction field effect transistor-integrated GaN microcantilever that utilizes piezoelectric polarization-induced changes in two-dimensional electron gas to transduce displacement with very high sensitivity. The piezotransistor demonstrated an ultra-high gauge factor of 8,700 while consuming an extremely low power of 1.36 nW, and transduced external excitation with a superior noise-limited resolution of 12.43 fm Hz(-1/2) and an outstanding responsivity of 170 nV fm(-1), which is comparable to the optical transduction limits. These extraordinary characteristics, which enabled unique detection of nanogram quantity of analytes using photoacoustic spectroscopy, can be readily exploited in realizing a multitude of novel sensing paradigms.

摘要

在超声频率范围内测量飞米级位移对于先进材料表征和传感具有吸引力,然而,使用非光学方式进行可靠转换仍面临重大挑战,而这可以显著减小换能器组件的尺寸和复杂性。在此,我们展示了使用集成有AlGaN/GaN异质结场效应晶体管的GaN微悬臂梁进行飞米级位移转换,该微悬臂梁利用二维电子气中压电极化引起的变化以非常高的灵敏度转换位移。该压控晶体管展现出8700的超高应变片系数,同时功耗极低,仅为1.36纳瓦,并且能够以12.43飞米·赫兹^(-1/2)的卓越噪声极限分辨率和170纳伏·飞米^(-1)的出色响应率转换外部激励,这与光学转换极限相当。这些非凡特性能够通过光声光谱法实现对纳克级分析物的独特检测,可轻松用于实现多种新型传感模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/72f6/4918345/f6dd27711131/ncomms8885-f1.jpg

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