AI Article Synopsis

  • Researchers have created a heterostructure combining Molybdenum diselenide (MoSe) with Mg-doped Gallium Nitride (p-GaN) to improve light detection efficiency.
  • The device shows impressive performance, achieving high photocurrent ratios, a responsivity of 130 A/W, and low noise, making it suitable for a range of light wavelengths from ultraviolet to near-infrared (300-950 nm).
  • Additionally, it features rapid response times, indicating its potential for high-speed and low-noise photodetection applications.

Article Abstract

Integration of nanolayered metal chalcogenides with wide-bandgap semiconductors forming pn heterojunction leads to the way of high-performance photodetection. This work demonstrates the fabrication of a few nanometer thick Molybdenum diselenide (MoSe)/Mg-doped Gallium Nitride (p-GaN) heterostructure for light detection purposes. The device exhibits low noise broadband spectral response from ultraviolet to near-infrared range (300-950 nm). The band-alignment and the charge transfer at the MoSe/p-GaN interface promote self-powered photodetection with high photocurrent to dark current ratio of 2000 and 1000 at 365 nm and 640 nm, respectively. A high responsivity of 130 A W, detectivity of 4.8 × 10Jones, and low noise equivalent power of 18 fW/Hzat 365 nm is achieved at an applied bias of 1 V. Moreover, the transient measurements reveal a fast rise/fall time of 407/710sec for the fabricated device. These outcomes exemplify the viability of MoSe/p-GaN heterostructure for high-speed and low-noise broadband photodetector applications.

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Source
http://dx.doi.org/10.1088/1361-6528/ac6817DOI Listing

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