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Photogating in Low Dimensional Photodetectors

Advanced Science · 2017 · Vol. 4(12) · pp. 1700323–1700323
Hehai FangWeida Hu

Abstract

Low dimensional materials including quantum dots, nanowires, 2D materials, and so forth have attracted increasing research interests for electronic and optoelectronic devices in recent years. Photogating, which is usually observed in photodetectors based on low dimensional materials and their hybrid structures, is demonstrated to play an important role. Photogating is considered as a way of conductance modulation through photoinduced gate voltage instead of simply and totally attributing it to trap states. This review first focuses on the gain of photogating and reveals the distinction from conventional photoconductive effect. The trap- and hybrid-induced photogating including their origins, formations, and characteristics are subsequently discussed. Then, the recent progress on trap- and hybrid-induced photogating in low dimensional photodetectors is elaborated. Though a high gain bandwidth product as high as 10<sup>9</sup> Hz is reported in several cases, a trade-off between gain and bandwidth has to be made for this type of photogating. The general photogating is put forward according to another three reported studies very recently. General photogating may enable simultaneous high gain and high bandwidth, paving the way to explore novel high-performance photodetectors.

2D Materials and ApplicationsNanowire Synthesis and ApplicationsElectronic and Structural Properties of OxidesPhotodetectorOptoelectronicsHigh-gain antennaPhotoconductivityBandwidth (computing)Materials scienceNanowireEngineering physicsPhysicsComputer science

Funding

  • Royal Society
  • National Natural Science Foundation of China
  • Chinese Academy of Sciences
Citations
906
FWCI
22.33
field-weighted impact
References
120
Percentile
100%
vs. same field & year
Citations per year
Cited by
Photogating in Low Dimensional Photodetectors
Advanced Science · 2017 · 906 citations
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Nature Nanotechnology · 2009 · 3,042 citations
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