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Anisotropic photoconduction in ultrathin CuO: A nonreciprocal system?

With the recent global surge in the research on perovskite halides, CuO is one of the binary oxides, which gets attention as a hole transport material. In centrosymmetric CuO, parity-time ( P T) violation leads to photoconduction. The P Tsymmetry can be preserved if the system were non-reciprocal. T...

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Published in:Journal of applied physics 2022-11, Vol.132 (19)
Main Authors: Ranjan, Ashish K., Jha, Priyanka A., Jha, Pardeep K., Singh, Prabhakar
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description With the recent global surge in the research on perovskite halides, CuO is one of the binary oxides, which gets attention as a hole transport material. In centrosymmetric CuO, parity-time ( P T) violation leads to photoconduction. The P Tsymmetry can be preserved if the system were non-reciprocal. Thus, in the current work, we fabricated an ultra-thin film of CuO using pulsed laser deposition and observed anisotropic photoconduction. The semiconductor parameters estimated from the photoresponse suggest that the relative value of free charge carrier density is neither altered significantly with thickness reduction nor with light exposure as it is quite low ( ∼10 − 7) suggesting high trap (deep) density. Further, anisotropic photocurrent in the absence of an electric field suggests the alteration in electromagnetic potential due to the existence of self-biasing and structural asymmetry. The application of Gauge field variance on 2D photonic metasurface reveals the non-chiral nature. It is suggesting T-symmetry breaking, and, therefore, the possibility of the photonic Aharonov–Bohm effect is expected in CuO thin films.
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source American Institute of Physics:Jisc Collections:Transitional Journals Agreement 2021-23 (Reading list)
subjects Applied physics
Asymmetry
Broken symmetry
Carrier density
Copper oxides
Current carriers
Electric fields
Halides
Parameter estimation
Perovskites
Photoelectric effect
Photonics
Pulsed laser deposition
Pulsed lasers
Thin films
title Anisotropic photoconduction in ultrathin CuO: A nonreciprocal system?
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