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Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors

Semiconductor colloidal quantum dots (QDs) have been regarded as promising fluorescent materials for chemical sensing, bio-detection and optical communications; yet it still remains challenging to bring out self-powered photodetectors based solely on QDs because the excited charges within QDs are ex...

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Autores principales: Hsiao, Po-Hsuan, Kuo, Kuan-Yi, Chen, Yafeng, Wu, Tsung-Yen, Chen, Chia-Yun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9926880/
https://www.ncbi.nlm.nih.gov/pubmed/36798491
http://dx.doi.org/10.1039/d2na00852a
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author Hsiao, Po-Hsuan
Kuo, Kuan-Yi
Chen, Yafeng
Wu, Tsung-Yen
Chen, Chia-Yun
author_facet Hsiao, Po-Hsuan
Kuo, Kuan-Yi
Chen, Yafeng
Wu, Tsung-Yen
Chen, Chia-Yun
author_sort Hsiao, Po-Hsuan
collection PubMed
description Semiconductor colloidal quantum dots (QDs) have been regarded as promising fluorescent materials for chemical sensing, bio-detection and optical communications; yet it still remains challenging to bring out self-powered photodetectors based solely on QDs because the excited charges within QDs are extremely immobile due to their reduced dimensionalities and they hardly form effective photocurrents. Hence, we have attempted to decouple the light-absorption and charge-transport criteria in order to feature highly-sensitive, rapid-response and self-driven photodetectors based on single-layer carbon QD layers (CQDLs) via facile in situ self-assembling deposition with fine control over thickness. We show explicit dark-current suppression by visualizing charge blocking phenomena and screen effects due to layered CQDL structures, which alleviate the movement of leakage carriers crossing over the CQD interlayers. By examining the distribution of electric fields within CQDLs under light excitation, the spatial dependence of the light-trapping effect within CQDLs was confirmed. These features are strongly associated with the thickness tuning of CQDLs, while 65 nm of CQDL thickness could manifest remarkable photoresponsivity above 9.4 mA W(−1) and detectivity above 5.9 × 10(12) under broadband light illumination. These results demonstrate the insights gained from an understanding of broadband optoelectronics, which might potentially pave the way for further employment in functional photodetection.
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spelling pubmed-99268802023-02-15 Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors Hsiao, Po-Hsuan Kuo, Kuan-Yi Chen, Yafeng Wu, Tsung-Yen Chen, Chia-Yun Nanoscale Adv Chemistry Semiconductor colloidal quantum dots (QDs) have been regarded as promising fluorescent materials for chemical sensing, bio-detection and optical communications; yet it still remains challenging to bring out self-powered photodetectors based solely on QDs because the excited charges within QDs are extremely immobile due to their reduced dimensionalities and they hardly form effective photocurrents. Hence, we have attempted to decouple the light-absorption and charge-transport criteria in order to feature highly-sensitive, rapid-response and self-driven photodetectors based on single-layer carbon QD layers (CQDLs) via facile in situ self-assembling deposition with fine control over thickness. We show explicit dark-current suppression by visualizing charge blocking phenomena and screen effects due to layered CQDL structures, which alleviate the movement of leakage carriers crossing over the CQD interlayers. By examining the distribution of electric fields within CQDLs under light excitation, the spatial dependence of the light-trapping effect within CQDLs was confirmed. These features are strongly associated with the thickness tuning of CQDLs, while 65 nm of CQDL thickness could manifest remarkable photoresponsivity above 9.4 mA W(−1) and detectivity above 5.9 × 10(12) under broadband light illumination. These results demonstrate the insights gained from an understanding of broadband optoelectronics, which might potentially pave the way for further employment in functional photodetection. RSC 2022-12-07 /pmc/articles/PMC9926880/ /pubmed/36798491 http://dx.doi.org/10.1039/d2na00852a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hsiao, Po-Hsuan
Kuo, Kuan-Yi
Chen, Yafeng
Wu, Tsung-Yen
Chen, Chia-Yun
Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
title Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
title_full Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
title_fullStr Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
title_full_unstemmed Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
title_short Balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
title_sort balance of photon management and charge collection from carbon-quantum-dot layers as self-powered broadband photodetectors
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9926880/
https://www.ncbi.nlm.nih.gov/pubmed/36798491
http://dx.doi.org/10.1039/d2na00852a
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