Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage

Designing a unique morphology and nanoarchitecture with a heterostructure is regarded as an efficient strategy to achieve lithium-ion batteries (LIBs) with high capacity and cycle life. Herein, N-doped C-encapsulated flower-like NiS/Ni3(BO3)2 heterostructures (NiS/Ni3(BO3)2/NC) with a core-shell mor...

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Published in:Dalton Transactions
Main Author: Yu Z.; Abidin S.Z.; Toyong N.M.P.; Zhao X.
Format: Article
Language:English
Published: Royal Society of Chemistry 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180561661&doi=10.1039%2fd3dt02692b&partnerID=40&md5=5ebea0d174ab6ab484f6931940ea16eb
id 2-s2.0-85180561661
spelling 2-s2.0-85180561661
Yu Z.; Abidin S.Z.; Toyong N.M.P.; Zhao X.
Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
2023
Dalton Transactions
53
4
10.1039/d3dt02692b
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180561661&doi=10.1039%2fd3dt02692b&partnerID=40&md5=5ebea0d174ab6ab484f6931940ea16eb
Designing a unique morphology and nanoarchitecture with a heterostructure is regarded as an efficient strategy to achieve lithium-ion batteries (LIBs) with high capacity and cycle life. Herein, N-doped C-encapsulated flower-like NiS/Ni3(BO3)2 heterostructures (NiS/Ni3(BO3)2/NC) with a core-shell morphology are successfully synthesized by a facile general method to improve the rate performance and prolong the cycle life of LIBs. The coated NC layer and core-shell structure with elasticity can relieve the volume expansion during the lithiation/delithiation process to strengthen the stability of the structure. Moreover, the NC layer and NiS/Ni3(BO3)2/NC heterostructure can enhance the electronic conductivity of the electrode and guarantee fast and unimpeded electron transfer channels, thereby improving the electrochemical reaction kinetics. Owing to the synergy of heterostructures and core-shell layer, the as-synthesized NiS/Ni3(BO3)2/NC anode acquires a specific charge capacity of 549 mA h g−1 at 0.2 A g−1 after 100 cycles; meanwhile, a reversible capacity of 322 mA h g−1 can be maintained even at 1 A g−1 after 500 cycles. This study develops a universal interface manipulation strategy for the synthesis of M3B2O6-based or/and other advanced transition metal compound anode materials for the practical applications of LIBs. © 2024 The Royal Society of Chemistry.
Royal Society of Chemistry
14779226
English
Article

author Yu Z.; Abidin S.Z.; Toyong N.M.P.; Zhao X.
spellingShingle Yu Z.; Abidin S.Z.; Toyong N.M.P.; Zhao X.
Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
author_facet Yu Z.; Abidin S.Z.; Toyong N.M.P.; Zhao X.
author_sort Yu Z.; Abidin S.Z.; Toyong N.M.P.; Zhao X.
title Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
title_short Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
title_full Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
title_fullStr Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
title_full_unstemmed Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
title_sort Rational design of N-doped C-encapsulated flower-like nickel-based heterostructured microsphere anodes for high-capacity and stable lithium storage
publishDate 2023
container_title Dalton Transactions
container_volume 53
container_issue 4
doi_str_mv 10.1039/d3dt02692b
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85180561661&doi=10.1039%2fd3dt02692b&partnerID=40&md5=5ebea0d174ab6ab484f6931940ea16eb
description Designing a unique morphology and nanoarchitecture with a heterostructure is regarded as an efficient strategy to achieve lithium-ion batteries (LIBs) with high capacity and cycle life. Herein, N-doped C-encapsulated flower-like NiS/Ni3(BO3)2 heterostructures (NiS/Ni3(BO3)2/NC) with a core-shell morphology are successfully synthesized by a facile general method to improve the rate performance and prolong the cycle life of LIBs. The coated NC layer and core-shell structure with elasticity can relieve the volume expansion during the lithiation/delithiation process to strengthen the stability of the structure. Moreover, the NC layer and NiS/Ni3(BO3)2/NC heterostructure can enhance the electronic conductivity of the electrode and guarantee fast and unimpeded electron transfer channels, thereby improving the electrochemical reaction kinetics. Owing to the synergy of heterostructures and core-shell layer, the as-synthesized NiS/Ni3(BO3)2/NC anode acquires a specific charge capacity of 549 mA h g−1 at 0.2 A g−1 after 100 cycles; meanwhile, a reversible capacity of 322 mA h g−1 can be maintained even at 1 A g−1 after 500 cycles. This study develops a universal interface manipulation strategy for the synthesis of M3B2O6-based or/and other advanced transition metal compound anode materials for the practical applications of LIBs. © 2024 The Royal Society of Chemistry.
publisher Royal Society of Chemistry
issn 14779226
language English
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