Aluminum doping effects on photoresponse characteristics of hydrothermal tin disulfide nanosheets

Tin disulfide has attracted enormous interest due to its excellent optical and electronic properties for future optoelectronic applications, especially high-performance photodetectors. Nevertheless, SnS 2 -based photodetectors still face great challenges for practical applications, such as low respo...

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Veröffentlicht in:CrystEngComm 2021-07, Vol.23 (26), p.4694-4699
Hauptverfasser: Meng, Xiancheng, Fan, Chao, An, Xia, Yuan, Shuo, Jing, Yongkai, Liu, Zhe, Sun, Chun, Zhang, Yonghui, Zhang, Zihui, Wang, Mengjun, Zheng, Hongxing, Li, Erping
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container_issue 26
container_start_page 4694
container_title CrystEngComm
container_volume 23
creator Meng, Xiancheng
Fan, Chao
An, Xia
Yuan, Shuo
Jing, Yongkai
Liu, Zhe
Sun, Chun
Zhang, Yonghui
Zhang, Zihui
Wang, Mengjun
Zheng, Hongxing
Li, Erping
description Tin disulfide has attracted enormous interest due to its excellent optical and electronic properties for future optoelectronic applications, especially high-performance photodetectors. Nevertheless, SnS 2 -based photodetectors still face great challenges for practical applications, such as low responsivity and slow response speed. Herein, the enhanced photoresponse characteristics of aluminum (Al)-doped SnS 2 nanosheets were investigated. Al-doped SnS 2 nanosheets were synthesized by using a convenient and high-yield hydrothermal technique, and high purity and high crystallinity were confirmed by SEM, XRD, Raman spectroscopy, XPS, and TEM. Al atoms were homogeneously introduced into SnS 2 nanosheets, leading to a slight increase in lateral size from 185.4 nm to 196.9 nm and thickness from 13.5 nm to 17.9 nm. Then, photodetectors based on Al-doped SnS 2 nanosheets were built and characterized. Compared to pristine SnS 2 , the photoresponse performance of the Al-doped SnS 2 nanosheets was significantly improved. In particular, the response time was reduced by nearly two orders of magnitude from 1040 ms to 51 ms. The responsivity was increased one hundredfold, from 0.79 mA W −1 to 15.16 mA W −1 . The photoresponse characteristics are prominently enhanced due to Al-doping induced band gap narrowing. Our findings provide an effective approach to improve the photoresponse performance of SnS 2 and pave the way for further optoelectronic applications of SnS 2 . Photoresponse characteristics of Al-doped SnS 2 nanosheets have been improved significantly by aluminum doping, compared to pristine SnS 2 . The response time was reduced by two orders of magnitude and the responsivity was increased one hundredfold.
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Nevertheless, SnS 2 -based photodetectors still face great challenges for practical applications, such as low responsivity and slow response speed. Herein, the enhanced photoresponse characteristics of aluminum (Al)-doped SnS 2 nanosheets were investigated. Al-doped SnS 2 nanosheets were synthesized by using a convenient and high-yield hydrothermal technique, and high purity and high crystallinity were confirmed by SEM, XRD, Raman spectroscopy, XPS, and TEM. Al atoms were homogeneously introduced into SnS 2 nanosheets, leading to a slight increase in lateral size from 185.4 nm to 196.9 nm and thickness from 13.5 nm to 17.9 nm. Then, photodetectors based on Al-doped SnS 2 nanosheets were built and characterized. Compared to pristine SnS 2 , the photoresponse performance of the Al-doped SnS 2 nanosheets was significantly improved. In particular, the response time was reduced by nearly two orders of magnitude from 1040 ms to 51 ms. The responsivity was increased one hundredfold, from 0.79 mA W −1 to 15.16 mA W −1 . The photoresponse characteristics are prominently enhanced due to Al-doping induced band gap narrowing. Our findings provide an effective approach to improve the photoresponse performance of SnS 2 and pave the way for further optoelectronic applications of SnS 2 . Photoresponse characteristics of Al-doped SnS 2 nanosheets have been improved significantly by aluminum doping, compared to pristine SnS 2 . 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Nevertheless, SnS 2 -based photodetectors still face great challenges for practical applications, such as low responsivity and slow response speed. Herein, the enhanced photoresponse characteristics of aluminum (Al)-doped SnS 2 nanosheets were investigated. Al-doped SnS 2 nanosheets were synthesized by using a convenient and high-yield hydrothermal technique, and high purity and high crystallinity were confirmed by SEM, XRD, Raman spectroscopy, XPS, and TEM. Al atoms were homogeneously introduced into SnS 2 nanosheets, leading to a slight increase in lateral size from 185.4 nm to 196.9 nm and thickness from 13.5 nm to 17.9 nm. Then, photodetectors based on Al-doped SnS 2 nanosheets were built and characterized. Compared to pristine SnS 2 , the photoresponse performance of the Al-doped SnS 2 nanosheets was significantly improved. In particular, the response time was reduced by nearly two orders of magnitude from 1040 ms to 51 ms. The responsivity was increased one hundredfold, from 0.79 mA W −1 to 15.16 mA W −1 . The photoresponse characteristics are prominently enhanced due to Al-doping induced band gap narrowing. Our findings provide an effective approach to improve the photoresponse performance of SnS 2 and pave the way for further optoelectronic applications of SnS 2 . Photoresponse characteristics of Al-doped SnS 2 nanosheets have been improved significantly by aluminum doping, compared to pristine SnS 2 . The response time was reduced by two orders of magnitude and the responsivity was increased one hundredfold.</description><subject>Aluminum</subject><subject>Chemistry</subject><subject>Chemistry, Multidisciplinary</subject><subject>Crystallography</subject><subject>Doping</subject><subject>Nanosheets</subject><subject>Optical properties</subject><subject>Optoelectronics</subject><subject>Photometers</subject><subject>Physical Sciences</subject><subject>Raman spectroscopy</subject><subject>Response time</subject><subject>Science &amp; Technology</subject><subject>Tin disulfide</subject><subject>X ray photoelectron spectroscopy</subject><issn>1466-8033</issn><issn>1466-8033</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><sourceid>HGBXW</sourceid><recordid>eNqNkctLxDAQxosouD4u3oWAN2V1ps_0KPWN4EXPJU0mNstuUpMU8b-364p69DQfM79vBr5JkiOEc4SsvlAoCaDgfLGVzDAvyzmHLNv-o3eTvRAWAJgjwiwRl8txZey4YsoNxr4y0ppkDMxZNvQuOk9hcDYQk73wQkbyJkQjJ0Cz_kN5F3vyK7Fk0VimTBiX2ihiVlgXeqIYDpIdLZaBDr_rfvJyc_3c3M0fn27vm8vHuUw5xnmd59QhVCRRi6LruKrrohapLFFXWYcogbKC56pKq051JaoyB5j6XEOdT7P95GSzd_DubaQQ24UbvZ1OtmmR86yqMcWJOt1Q0rsQPOl28GYl_EeL0K4jbK-wuf6K8GGCzzbwO3VOB2nISvoxAEBZZlBU5aRgvZr_n25MFNE427jRxsl6vLH6IH8cv7_MPgHhMo_Z</recordid><startdate>20210714</startdate><enddate>20210714</enddate><creator>Meng, Xiancheng</creator><creator>Fan, Chao</creator><creator>An, Xia</creator><creator>Yuan, Shuo</creator><creator>Jing, Yongkai</creator><creator>Liu, Zhe</creator><creator>Sun, Chun</creator><creator>Zhang, Yonghui</creator><creator>Zhang, Zihui</creator><creator>Wang, Mengjun</creator><creator>Zheng, Hongxing</creator><creator>Li, Erping</creator><general>Royal Soc Chemistry</general><general>Royal Society of Chemistry</general><scope>BLEPL</scope><scope>DTL</scope><scope>HGBXW</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7U5</scope><scope>8FD</scope><scope>L7M</scope><orcidid>https://orcid.org/0000-0003-0046-8407</orcidid><orcidid>https://orcid.org/0000-0002-3870-2951</orcidid></search><sort><creationdate>20210714</creationdate><title>Aluminum doping effects on photoresponse characteristics of hydrothermal tin disulfide nanosheets</title><author>Meng, Xiancheng ; 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subjects Aluminum
Chemistry
Chemistry, Multidisciplinary
Crystallography
Doping
Nanosheets
Optical properties
Optoelectronics
Photometers
Physical Sciences
Raman spectroscopy
Response time
Science & Technology
Tin disulfide
X ray photoelectron spectroscopy
title Aluminum doping effects on photoresponse characteristics of hydrothermal tin disulfide nanosheets
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