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Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications

[Image: see text] A novel microstructure of anode materials for lithium-ion batteries with ternary components, comprising tin (Sn), rice husk-derived silica (SiO(2)), and bronze-titanium dioxide (TiO(2)(B)), has been developed. The goal of this research is to utilize the nanocomposite design of rice...

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Autores principales: Autthawong, Thanapat, Yodbunork, Chawin, Yodying, Waewwow, Boonprachai, Ruttapol, Namsar, Orapim, Yu, Ai-shui, Chimupala, Yothin, Sarakonsri, Thapanee
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8756799/
https://www.ncbi.nlm.nih.gov/pubmed/35036797
http://dx.doi.org/10.1021/acsomega.1c05982
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author Autthawong, Thanapat
Yodbunork, Chawin
Yodying, Waewwow
Boonprachai, Ruttapol
Namsar, Orapim
Yu, Ai-shui
Chimupala, Yothin
Sarakonsri, Thapanee
author_facet Autthawong, Thanapat
Yodbunork, Chawin
Yodying, Waewwow
Boonprachai, Ruttapol
Namsar, Orapim
Yu, Ai-shui
Chimupala, Yothin
Sarakonsri, Thapanee
author_sort Autthawong, Thanapat
collection PubMed
description [Image: see text] A novel microstructure of anode materials for lithium-ion batteries with ternary components, comprising tin (Sn), rice husk-derived silica (SiO(2)), and bronze-titanium dioxide (TiO(2)(B)), has been developed. The goal of this research is to utilize the nanocomposite design of rice husk-derived SiO(2) and Sn nanoparticles self-assembled on TiO(2)(B) nanorods, Sn–SiO(2)@TiO(2)(B), through simple chemical route methods. Following that, the microstructure and electrochemical performance of as-prepared products were investigated. The major patterns of the X-ray diffraction technique can be precisely indexed as monoclinic TiO(2)(B). The patterns of SiO(2) and Sn were found to be low in intensity since the particles were amorphous and in the nanoscale range, respectively. Small spherical particles, Sn and SiO(2), attached to TiO(2)(B) nanorods were discovered. Therefore, the influence mechanism of Sn–SiO(2)@TiO(2)(B) fabrication was proposed. The Sn–SiO(2)@TiO(2)(B) anode material performed exceptionally well in terms of electrochemical and battery performance. The as-prepared electrode demonstrated outstanding stability over 500 cycles, with a high discharge capacity of ∼150 mA h g(–1) at a fast-charging current of 5000 mA g(–1) and a low internal resistance of around 250.0 Ω. The synthesized Sn–SiO(2)@TiO(2)(B) nanocomposites have a distinct structure, the potential for fast charging, safety in use, and good stability, indicating their use as promising and effective anode materials in better power batteries for the next-generation applications.
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spelling pubmed-87567992022-01-13 Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications Autthawong, Thanapat Yodbunork, Chawin Yodying, Waewwow Boonprachai, Ruttapol Namsar, Orapim Yu, Ai-shui Chimupala, Yothin Sarakonsri, Thapanee ACS Omega [Image: see text] A novel microstructure of anode materials for lithium-ion batteries with ternary components, comprising tin (Sn), rice husk-derived silica (SiO(2)), and bronze-titanium dioxide (TiO(2)(B)), has been developed. The goal of this research is to utilize the nanocomposite design of rice husk-derived SiO(2) and Sn nanoparticles self-assembled on TiO(2)(B) nanorods, Sn–SiO(2)@TiO(2)(B), through simple chemical route methods. Following that, the microstructure and electrochemical performance of as-prepared products were investigated. The major patterns of the X-ray diffraction technique can be precisely indexed as monoclinic TiO(2)(B). The patterns of SiO(2) and Sn were found to be low in intensity since the particles were amorphous and in the nanoscale range, respectively. Small spherical particles, Sn and SiO(2), attached to TiO(2)(B) nanorods were discovered. Therefore, the influence mechanism of Sn–SiO(2)@TiO(2)(B) fabrication was proposed. The Sn–SiO(2)@TiO(2)(B) anode material performed exceptionally well in terms of electrochemical and battery performance. The as-prepared electrode demonstrated outstanding stability over 500 cycles, with a high discharge capacity of ∼150 mA h g(–1) at a fast-charging current of 5000 mA g(–1) and a low internal resistance of around 250.0 Ω. The synthesized Sn–SiO(2)@TiO(2)(B) nanocomposites have a distinct structure, the potential for fast charging, safety in use, and good stability, indicating their use as promising and effective anode materials in better power batteries for the next-generation applications. American Chemical Society 2021-12-31 /pmc/articles/PMC8756799/ /pubmed/35036797 http://dx.doi.org/10.1021/acsomega.1c05982 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Autthawong, Thanapat
Yodbunork, Chawin
Yodying, Waewwow
Boonprachai, Ruttapol
Namsar, Orapim
Yu, Ai-shui
Chimupala, Yothin
Sarakonsri, Thapanee
Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications
title Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications
title_full Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications
title_fullStr Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications
title_full_unstemmed Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications
title_short Fast-Charging Anode Materials and Novel Nanocomposite Design of Rice Husk-Derived SiO(2) and Sn Nanoparticles Self-Assembled on TiO(2)(B) Nanorods for Lithium-Ion Storage Applications
title_sort fast-charging anode materials and novel nanocomposite design of rice husk-derived sio(2) and sn nanoparticles self-assembled on tio(2)(b) nanorods for lithium-ion storage applications
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8756799/
https://www.ncbi.nlm.nih.gov/pubmed/35036797
http://dx.doi.org/10.1021/acsomega.1c05982
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