Issue 1, 2023

CuBi2O4 nanocrystals integrated with polyaniline nanobelt arrays for weak light photomultiplication type photodetector

Abstract

In this paper, a novel flexible photodetector based on emerging p-type CuBi2O4 and p-type conducting polymer polyaniline is fabricated. The conducting polymer is directly coated on the surface of CuBi2O4via a facile and low-cost in situ polymerization approach. The morphological investigation of CuBi2O4-polyaniline nanohybrid material shows that nanobelts and the material interface are responsible for the high rate of charge carrier generation. X-ray diffraction analysis confirmed that the inorganic material CuBi2O4 intercalated in the polyaniline matrix. The IV measurement was carried out on the prepared device in the range of −50 V to +50 V and the photoresponse at an illumination intensity of 50 μW cm−2. The flexible device shows high-performance photodetection with a high external quantum efficiency (EQE) of 1.824 × 103 %, a high photoresponsivity of 5.381 A W−1 and a detectivity of 6.02 × 1011 Jones at only 1 V. Because of the straightforward device design and low-cost fabrication process, this study offers a feasible way for manufacturing organic–inorganic high-performance low-intensity photon detectors.

Graphical abstract: CuBi2O4 nanocrystals integrated with polyaniline nanobelt arrays for weak light photomultiplication type photodetector

Supplementary files

Article information

Article type
Paper
Submitted
10 Oct 2022
Accepted
09 Nov 2022
First published
29 Nov 2022

Sustainable Energy Fuels, 2023,7, 131-143

CuBi2O4 nanocrystals integrated with polyaniline nanobelt arrays for weak light photomultiplication type photodetector

A. Singh, P. Chauhan, A. Verma and B. Chandra Yadav, Sustainable Energy Fuels, 2023, 7, 131 DOI: 10.1039/D2SE01410F

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