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High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method

Two-dimensional (2D) organic−inorganic perovskites have great potential for the fabrication of next-generation photodetectors owing to their outstanding optoelectronic features, but their utilization has encountered a bottleneck in anisotropic carrier transportation induced by the unfavorable contin...

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Autores principales: Liu, Shijie, Li, Hao, Lu, Haifei, Wang, Yanran, Wen, Xiaoyan, Deng, Shuo, Li, Ming-Yu, Liu, Sisi, Wang, Cong, Li, Xiao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738548/
https://www.ncbi.nlm.nih.gov/pubmed/36500840
http://dx.doi.org/10.3390/nano12234217
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author Liu, Shijie
Li, Hao
Lu, Haifei
Wang, Yanran
Wen, Xiaoyan
Deng, Shuo
Li, Ming-Yu
Liu, Sisi
Wang, Cong
Li, Xiao
author_facet Liu, Shijie
Li, Hao
Lu, Haifei
Wang, Yanran
Wen, Xiaoyan
Deng, Shuo
Li, Ming-Yu
Liu, Sisi
Wang, Cong
Li, Xiao
author_sort Liu, Shijie
collection PubMed
description Two-dimensional (2D) organic−inorganic perovskites have great potential for the fabrication of next-generation photodetectors owing to their outstanding optoelectronic features, but their utilization has encountered a bottleneck in anisotropic carrier transportation induced by the unfavorable continuity of the thin films. We propose a facile approach for the fabrication of 0D ZnO quantum dot (QD)/2D (PEA)(2)PbI(4) nanosheet hybrid photodetectors under the atmospheric conditions associated with the ZnO QD chloroform antisolvent. Profiting from the antisolvent, the uniform morphology of the perovskite thin films is obtained owing to the significantly accelerated nucleation site formation and grain growth rates, and ZnO QDs homogeneously decorate the surface of (PEA)(2)PbI(4) nanosheets, which spontaneously passivate the defects on perovskites and enhance the carrier separation by the well-matched band structure. By varying the ZnO QD concentration, the Ion/Ioff ratio of the photodetectors radically elevates from 78.3 to 1040, and a 12-fold increase in the normalized detectivity is simultaneously observed. In addition, the agglomeration of perovskite grains is governed by the annealing temperature, and the photodetector fabricated at a relatively low temperature of 120 °C exhibits excellent stability after a 50-cycle test in the air condition without any encapsulation.
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spelling pubmed-97385482022-12-11 High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method Liu, Shijie Li, Hao Lu, Haifei Wang, Yanran Wen, Xiaoyan Deng, Shuo Li, Ming-Yu Liu, Sisi Wang, Cong Li, Xiao Nanomaterials (Basel) Article Two-dimensional (2D) organic−inorganic perovskites have great potential for the fabrication of next-generation photodetectors owing to their outstanding optoelectronic features, but their utilization has encountered a bottleneck in anisotropic carrier transportation induced by the unfavorable continuity of the thin films. We propose a facile approach for the fabrication of 0D ZnO quantum dot (QD)/2D (PEA)(2)PbI(4) nanosheet hybrid photodetectors under the atmospheric conditions associated with the ZnO QD chloroform antisolvent. Profiting from the antisolvent, the uniform morphology of the perovskite thin films is obtained owing to the significantly accelerated nucleation site formation and grain growth rates, and ZnO QDs homogeneously decorate the surface of (PEA)(2)PbI(4) nanosheets, which spontaneously passivate the defects on perovskites and enhance the carrier separation by the well-matched band structure. By varying the ZnO QD concentration, the Ion/Ioff ratio of the photodetectors radically elevates from 78.3 to 1040, and a 12-fold increase in the normalized detectivity is simultaneously observed. In addition, the agglomeration of perovskite grains is governed by the annealing temperature, and the photodetector fabricated at a relatively low temperature of 120 °C exhibits excellent stability after a 50-cycle test in the air condition without any encapsulation. MDPI 2022-11-27 /pmc/articles/PMC9738548/ /pubmed/36500840 http://dx.doi.org/10.3390/nano12234217 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Liu, Shijie
Li, Hao
Lu, Haifei
Wang, Yanran
Wen, Xiaoyan
Deng, Shuo
Li, Ming-Yu
Liu, Sisi
Wang, Cong
Li, Xiao
High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method
title High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method
title_full High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method
title_fullStr High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method
title_full_unstemmed High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method
title_short High Performance 0D ZnO Quantum Dot/2D (PEA)(2)PbI(4) Nanosheet Hybrid Photodetectors Fabricated via a Facile Antisolvent Method
title_sort high performance 0d zno quantum dot/2d (pea)(2)pbi(4) nanosheet hybrid photodetectors fabricated via a facile antisolvent method
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9738548/
https://www.ncbi.nlm.nih.gov/pubmed/36500840
http://dx.doi.org/10.3390/nano12234217
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