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Wide Response Range Photoelectrochemical UV Detector Based on Anodized TiO2-Nanotubes@Ti@quartz Structure.
Wang, Youqing; Zhang, Miaomiao; Wu, Wenxuan; Wang, Ze; Liu, Minghui; Yang, Tiantian.
Affiliation
  • Wang Y; Research Center for Semiconductor Materials and Devices, Shaanxi University of Science and Technology, Xi'an 710021, China.
  • Zhang M; Research Center for Semiconductor Materials and Devices, Shaanxi University of Science and Technology, Xi'an 710021, China.
  • Wu W; Research Center for Semiconductor Materials and Devices, Shaanxi University of Science and Technology, Xi'an 710021, China.
  • Wang Z; Research Center for Semiconductor Materials and Devices, Shaanxi University of Science and Technology, Xi'an 710021, China.
  • Liu M; Research Center for Semiconductor Materials and Devices, Shaanxi University of Science and Technology, Xi'an 710021, China.
  • Yang T; School of Mechatronic Engineering, Xi'an Technological University, Xi'an 710021, China.
  • Renqianzhuoma; Research Center for Semiconductor Materials and Devices, Shaanxi University of Science and Technology, Xi'an 710021, China.
Nanomaterials (Basel) ; 14(5)2024 Feb 28.
Article in En | MEDLINE | ID: mdl-38470770
ABSTRACT
Conventional sandwich structure photoelectrochemical UV detectors cannot detect UV light below 300 nm due to UV filtering problems. In this work, we propose to place the electron collector inside the active material, thus avoiding the effect of electrodes on light absorption. We obtained a TiO2-nanotubes@Ti@quartz photoanode structure by precise treatment of a commercial Ti mesh by anodic oxidation. The structure can absorb any light in the near-UV band and has superior stability to other metal electrodes. The final encapsulated photoelectrochemical UV detectors exhibit good switching characteristics with a response time below 100 ms. The mechanism of the oxidation conditions on the photovoltaic performance of the device was investigated by the electrochemical impedance method, and we obtained the optimal synthesis conditions. Response tests under continuous spectroscopy confirm that the response range of the device is extended from 300-400 nm to 240-400 nm. This idea of a built-in collector is an effective way to extend the response range of a photoelectrochemical detector.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nanomaterials (Basel) Year: 2024 Document type: Article Affiliation country: China

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: Nanomaterials (Basel) Year: 2024 Document type: Article Affiliation country: China