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Controllable Inverse Photoconductance in Semiconducting Nanowire Films. | LitMetric

Controllable Inverse Photoconductance in Semiconducting Nanowire Films.

Adv Mater

Department of Chemistry, Institute of Biomimetic Materials & Chemistry, Anhui Engineering Laboratory of Biomimetic Materials, Division of Nanomaterials & Chemistry, Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, 230026, China.

Published: September 2022

AI Article Synopsis

  • Tellurium (Te), usually studied for positive photoconductance in p-type semiconductors, exhibits an unusual negative photoresponse in nanowires (NWs) under certain light conditions.
  • The experimental results indicate that the presence of adsorbed oxygen on Te NWs influences this abnormal behavior, as it competes with the normal photoconductive effect.
  • The study further investigates the impact of Te NW size and the introduction of a Te-Au heterojunction, which enhances negative photoresponse through hot-electron injection, suggesting new potential applications for Te-NW-based photodetectors.

Article Abstract

As a typical p-type semiconductor, tellurium (Te) has been widely studied for the construction of photodetectors. However, only the positive photoconductance of Te-based photodetectors based on the photoconductive effect has been observed in the reported literature. Herein, an unusual but interesting phenomenon, in that tellurium nanowires (NWs) behave with negative photoresponse to positive photoresponse under enlarged optical intensities from the UV to VIS-IR region is reported. According to the experiments and simulations, adsorbed oxygen on the surface of Te NWs plays a significant role in the abnormal photoresponse. The inverse photoconductance can be attributed to the competition between the photoconductive effect and the oxygen desorption effect. Moreover, the influence of the size and layers of Te NWs is also discussed. This inverse photoconductance phenomenon is further explored by introducing the Te-Au heterojunction system. Hot-electron injection at the Te-Au heterojunction interface induces a more obvious tendency to behave with a negative photoresponse. These findings will be beneficial for potential applications of Te-NW-based photodetectors.

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Source
http://dx.doi.org/10.1002/adma.202204698DOI Listing

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