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Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries

Germanium-based multi-metallic-oxide materials have advantages of low activation energy, tunable output voltage, and high theoretical capacity. However, they also exhibit unsatisfactory electronic conductivity, sluggish cation kinetics, and severe volume change, resulting in inferior long-cycle stab...

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Autores principales: Guo, Chaofei, Chen, Shuangqiang, Aslam, Junaid, Li, Jiayi, Lv, Li-Ping, Sun, Weiwei, Cao, Weimin, Wang, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10145008/
https://www.ncbi.nlm.nih.gov/pubmed/37111018
http://dx.doi.org/10.3390/nano13081432
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author Guo, Chaofei
Chen, Shuangqiang
Aslam, Junaid
Li, Jiayi
Lv, Li-Ping
Sun, Weiwei
Cao, Weimin
Wang, Yong
author_facet Guo, Chaofei
Chen, Shuangqiang
Aslam, Junaid
Li, Jiayi
Lv, Li-Ping
Sun, Weiwei
Cao, Weimin
Wang, Yong
author_sort Guo, Chaofei
collection PubMed
description Germanium-based multi-metallic-oxide materials have advantages of low activation energy, tunable output voltage, and high theoretical capacity. However, they also exhibit unsatisfactory electronic conductivity, sluggish cation kinetics, and severe volume change, resulting in inferior long-cycle stability and rate performance in lithium-ion batteries (LIBs). To solve these problems, we synthesize metal-organic frameworks derived from rice-like Zn(2)GeO(4) nanowire bundles as the anode of LIBs via a microwave-assisted hydrothermal method, minimizing the particle size and enlarging the cation’s transmission channels, as well as, enhancing the electronic conductivity of the materials. The obtained Zn(2)GeO(4) anode exhibits superior electrochemical performance. A high initial charge capacity of 730 mAhg(−1) is obtained and maintained at 661 mAhg(−1) after 500 cycles at 100 mA g(−1) with a small capacity degradation ratio of ~0.02% for each cycle. Moreover, Zn(2)GeO(4) exhibits a good rate performance, delivering a high capacity of 503 mA h g(−1) at 5000 mA g(−1). The good electrochemical performance of the rice-like Zn(2)GeO(4) electrode can be attributed to its unique wire-bundle structure, the buffering effect of the bimetallic reaction at different potentials, good electrical conductivity, and fast kinetic rate.
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spelling pubmed-101450082023-04-29 Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries Guo, Chaofei Chen, Shuangqiang Aslam, Junaid Li, Jiayi Lv, Li-Ping Sun, Weiwei Cao, Weimin Wang, Yong Nanomaterials (Basel) Article Germanium-based multi-metallic-oxide materials have advantages of low activation energy, tunable output voltage, and high theoretical capacity. However, they also exhibit unsatisfactory electronic conductivity, sluggish cation kinetics, and severe volume change, resulting in inferior long-cycle stability and rate performance in lithium-ion batteries (LIBs). To solve these problems, we synthesize metal-organic frameworks derived from rice-like Zn(2)GeO(4) nanowire bundles as the anode of LIBs via a microwave-assisted hydrothermal method, minimizing the particle size and enlarging the cation’s transmission channels, as well as, enhancing the electronic conductivity of the materials. The obtained Zn(2)GeO(4) anode exhibits superior electrochemical performance. A high initial charge capacity of 730 mAhg(−1) is obtained and maintained at 661 mAhg(−1) after 500 cycles at 100 mA g(−1) with a small capacity degradation ratio of ~0.02% for each cycle. Moreover, Zn(2)GeO(4) exhibits a good rate performance, delivering a high capacity of 503 mA h g(−1) at 5000 mA g(−1). The good electrochemical performance of the rice-like Zn(2)GeO(4) electrode can be attributed to its unique wire-bundle structure, the buffering effect of the bimetallic reaction at different potentials, good electrical conductivity, and fast kinetic rate. MDPI 2023-04-21 /pmc/articles/PMC10145008/ /pubmed/37111018 http://dx.doi.org/10.3390/nano13081432 Text en © 2023 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
Guo, Chaofei
Chen, Shuangqiang
Aslam, Junaid
Li, Jiayi
Lv, Li-Ping
Sun, Weiwei
Cao, Weimin
Wang, Yong
Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries
title Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries
title_full Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries
title_fullStr Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries
title_full_unstemmed Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries
title_short Microwave-Assisted Metal-Organic Frameworks Derived Synthesis of Zn(2)GeO(4) Nanowire Bundles for Lithium-Ion Batteries
title_sort microwave-assisted metal-organic frameworks derived synthesis of zn(2)geo(4) nanowire bundles for lithium-ion batteries
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10145008/
https://www.ncbi.nlm.nih.gov/pubmed/37111018
http://dx.doi.org/10.3390/nano13081432
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