Please use this identifier to cite or link to this item: https://doi.org/10.1515/nanoph-2019-0542
Title: Enhanced photoresponse of highly air-stable palladium diselenide by thickness engineering
Authors: Wu, J.
Zhao, Y. 
Sun, M.
Zheng, M. 
Zhang, G.
Liu, X.
Chi, D.
Keywords: band convergence
palladium diselenide
photodetector
photoresponsivity
Issue Date: 21-Feb-2020
Publisher: De Gruyter
Citation: Wu, J., Zhao, Y., Sun, M., Zheng, M., Zhang, G., Liu, X., Chi, D. (2020-02-21). Enhanced photoresponse of highly air-stable palladium diselenide by thickness engineering. Nanophotonics 9 (8) : 2467-2474. ScholarBank@NUS Repository. https://doi.org/10.1515/nanoph-2019-0542
Rights: Attribution 4.0 International
Abstract: Recently, layered two-dimensional (2D) palladium diselenide (PdSe2), with a unique low- symmetry puckered pentagon atomic morphology, has emerged as a promising candidate for next-generation nanoelectronics and optoelectronics because of its chemical stability and extraordinary electrical properties. Moreover, PdSe2 possesses a strong thickness-dependent bandgap that varies from 0 eV for bulk to 1.3 eV for monolayer, which can further render its potential applications in optoelectronics. However, the layer-dependent optoelectronic properties of PdSe2 are still lacking up to date. Herein, we studied the optoelectronics transport characteristics of high-quality PdSe2-based photodetectors with different thicknesses. We demonstrated an enhancement of PdSe2 photodetector performance owing to the band engineering via a thickness reduction. The highest responsivity of 5.35 A/W can be achieved with an external quantum efficiency of 1250% at the wavelength of 532 nm. We attribute such high performance in photoresponsivity to the high valley convergence in the conduction band of layered PdSe2, in agreement with first-principles calculation. Our results offer new insight into the layer-dependent optoelectronic properties of PdSe2 and open new avenues in engineering next-generation 2D-based electronics and optoelectronics. © 2020 Jing Wu, Dongzhi Chi, Xinke Liu et al., published by De Gruyter, Berlin/Boston 2020.
Source Title: Nanophotonics
URI: https://scholarbank.nus.edu.sg/handle/10635/198578
ISSN: 21928614
DOI: 10.1515/nanoph-2019-0542
Rights: Attribution 4.0 International
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