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Giant piezoresistive effect by optoelectronic coupling in a heterojunction.


ABSTRACT: Enhancing the piezoresistive effect is crucial for improving the sensitivity of mechanical sensors. Herein, we report that the piezoresistive effect in a semiconductor heterojunction can be enormously enhanced via optoelectronic coupling. A lateral photovoltage, which is generated in the top material layer of a heterojunction under non-uniform illumination, can be coupled with an optimally tuned electric current to modulate the magnitude of the piezoresistive effect. We demonstrate a tuneable giant piezoresistive effect in a cubic silicon carbide/silicon heterojunction, resulting in an extraordinarily high gauge factor of approximately 58,000, which is the highest gauge factor reported for semiconductor-based mechanical sensors to date. This gauge factor is approximately 30,000 times greater than that of commercial metal strain gauges and more than 2,000 times greater than that of cubic silicon carbide. The phenomenon discovered can pave the way for the development of ultra-sensitive sensor technology.

SUBMITTER: Nguyen T 

PROVIDER: S-EPMC6742666 | biostudies-literature | 2019 Sep

REPOSITORIES: biostudies-literature

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Giant piezoresistive effect by optoelectronic coupling in a heterojunction.

Nguyen Thanh T   Dinh Toan T   Foisal Abu Riduan Md ARM   Phan Hoang-Phuong HP   Nguyen Tuan-Khoa TK   Nguyen Nam-Trung NT   Dao Dzung Viet DV  

Nature communications 20190912 1


Enhancing the piezoresistive effect is crucial for improving the sensitivity of mechanical sensors. Herein, we report that the piezoresistive effect in a semiconductor heterojunction can be enormously enhanced via optoelectronic coupling. A lateral photovoltage, which is generated in the top material layer of a heterojunction under non-uniform illumination, can be coupled with an optimally tuned electric current to modulate the magnitude of the piezoresistive effect. We demonstrate a tuneable gi  ...[more]

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