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Bi(2)O(2)Se-based integrated multifunctional optoelectronics

The prominent light–matter interaction in 2D materials has become a pivotal research area that involves either an archetypal study of inherent mechanisms to explore such interactions or specific applications to assess the efficacy of such novel phenomena. With scientifically controlled light–matter...

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Autores principales: Verma, Dharmendra, Liu, Bo, Chen, Tsung-Cheng, Li, Lain-Jong, Lai, Chao-Sung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9470018/
https://www.ncbi.nlm.nih.gov/pubmed/36133346
http://dx.doi.org/10.1039/d2na00245k
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author Verma, Dharmendra
Liu, Bo
Chen, Tsung-Cheng
Li, Lain-Jong
Lai, Chao-Sung
author_facet Verma, Dharmendra
Liu, Bo
Chen, Tsung-Cheng
Li, Lain-Jong
Lai, Chao-Sung
author_sort Verma, Dharmendra
collection PubMed
description The prominent light–matter interaction in 2D materials has become a pivotal research area that involves either an archetypal study of inherent mechanisms to explore such interactions or specific applications to assess the efficacy of such novel phenomena. With scientifically controlled light–matter interactions, various applications have been developed. Here, we report four diverse applications on a single structure utilizing the efficient photoresponse of Bi(2)O(2)Se with precisely tuned multiple optical wavelengths. First, the Bi(2)O(2)Se-based device performs the function of optoelectronic memory using UV (λ = 365 nm, 1.1 mW cm(−2)) for the write-in process with SiO(2) as the charge trapping medium followed by a +1 V bias for read-out. Second, associative learning is mimicked with wavelengths of 525 nm and 635 nm. Third, using similar optical inputs, functions of logic gates “AND”, “OR”, “NAND”, and “NOR” are realized with response current and resistance as outputs. Fourth is the demonstration of a 4 bit binary to the decimal converter using wavelengths of 740 nm (LSB), 595 nm, 490 nm, and 385 nm (MSB) as binary inputs and output response current regarded as equivalent decimal output. Our demonstration is a paradigm for Bi(2)O(2)Se-based devices to be an integral part of future advanced multifunctional electronic systems.
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spelling pubmed-94700182022-09-20 Bi(2)O(2)Se-based integrated multifunctional optoelectronics Verma, Dharmendra Liu, Bo Chen, Tsung-Cheng Li, Lain-Jong Lai, Chao-Sung Nanoscale Adv Chemistry The prominent light–matter interaction in 2D materials has become a pivotal research area that involves either an archetypal study of inherent mechanisms to explore such interactions or specific applications to assess the efficacy of such novel phenomena. With scientifically controlled light–matter interactions, various applications have been developed. Here, we report four diverse applications on a single structure utilizing the efficient photoresponse of Bi(2)O(2)Se with precisely tuned multiple optical wavelengths. First, the Bi(2)O(2)Se-based device performs the function of optoelectronic memory using UV (λ = 365 nm, 1.1 mW cm(−2)) for the write-in process with SiO(2) as the charge trapping medium followed by a +1 V bias for read-out. Second, associative learning is mimicked with wavelengths of 525 nm and 635 nm. Third, using similar optical inputs, functions of logic gates “AND”, “OR”, “NAND”, and “NOR” are realized with response current and resistance as outputs. Fourth is the demonstration of a 4 bit binary to the decimal converter using wavelengths of 740 nm (LSB), 595 nm, 490 nm, and 385 nm (MSB) as binary inputs and output response current regarded as equivalent decimal output. Our demonstration is a paradigm for Bi(2)O(2)Se-based devices to be an integral part of future advanced multifunctional electronic systems. RSC 2022-08-01 /pmc/articles/PMC9470018/ /pubmed/36133346 http://dx.doi.org/10.1039/d2na00245k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Verma, Dharmendra
Liu, Bo
Chen, Tsung-Cheng
Li, Lain-Jong
Lai, Chao-Sung
Bi(2)O(2)Se-based integrated multifunctional optoelectronics
title Bi(2)O(2)Se-based integrated multifunctional optoelectronics
title_full Bi(2)O(2)Se-based integrated multifunctional optoelectronics
title_fullStr Bi(2)O(2)Se-based integrated multifunctional optoelectronics
title_full_unstemmed Bi(2)O(2)Se-based integrated multifunctional optoelectronics
title_short Bi(2)O(2)Se-based integrated multifunctional optoelectronics
title_sort bi(2)o(2)se-based integrated multifunctional optoelectronics
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9470018/
https://www.ncbi.nlm.nih.gov/pubmed/36133346
http://dx.doi.org/10.1039/d2na00245k
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