Cargando…

CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation

Conspicuously, metal–organic frameworks (MOFs) serve as homogenously and periodically atom‐dispersed self‐sacrificial template for in situ engineering of hierarchical porous carbon‐encapsulated micro/nanoheterostructure materials, integrating the merits of micro/nanostructure to high‐volumetric ener...

Descripción completa

Detalles Bibliográficos
Autores principales: Lin, Jia, Zeng, Chenghui, Lin, Xiaoming, Xu, Chao, Su, Cheng‐Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7375241/
https://www.ncbi.nlm.nih.gov/pubmed/32714768
http://dx.doi.org/10.1002/advs.202000736
_version_ 1783561842082185216
author Lin, Jia
Zeng, Chenghui
Lin, Xiaoming
Xu, Chao
Su, Cheng‐Yong
author_facet Lin, Jia
Zeng, Chenghui
Lin, Xiaoming
Xu, Chao
Su, Cheng‐Yong
author_sort Lin, Jia
collection PubMed
description Conspicuously, metal–organic frameworks (MOFs) serve as homogenously and periodically atom‐dispersed self‐sacrificial template for in situ engineering of hierarchical porous carbon‐encapsulated micro/nanoheterostructure materials, integrating the merits of micro/nanostructure to high‐volumetric energy storage. Copper phosphide represents a promising candidate due to its compact material density compared to commercial graphite. Herein, micro/nanostructured Cu(3)P/Cu encapsulated by carbon‐nanotube‐assembled hierarchical octahedral carbonaceous matrix (Cu(3)P/Cu@CNHO) is constructed by an in situ MOF‐derived engineering for novel anode material in LIBs, which achieves an extraordinary cycling stability (a well‐maintained gravimetric/volumetric capacity of 463.2 mAh g(−1)/1878.4 mAh cm(−3) at 1 A g(−1) up to 1600 cycles) and distinguished rate capability (an ameliorated capacity of 317.7 mAh g(−1) even at 10 A g(−1)), together with unprecedented heat‐resistant capability (an elevated temperature of 50 °C for 1000 cycles maintaining 434.7 mAh g(−1) at 0.5 A g(−1)). The superior electrochemical performance of Cu(3)P/Cu@CNHO is credited to the large specific surface area, conductive carbon matrix and metallic copper dopants, synergistic effects of the intrinsic Cu(3)P/Cu heterostructure, and well‐defined micro/nanostructure, facilitating a boosted electrochemical conductivity and accelerated diffusion kinetics.
format Online
Article
Text
id pubmed-7375241
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-73752412020-07-23 CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation Lin, Jia Zeng, Chenghui Lin, Xiaoming Xu, Chao Su, Cheng‐Yong Adv Sci (Weinh) Full Papers Conspicuously, metal–organic frameworks (MOFs) serve as homogenously and periodically atom‐dispersed self‐sacrificial template for in situ engineering of hierarchical porous carbon‐encapsulated micro/nanoheterostructure materials, integrating the merits of micro/nanostructure to high‐volumetric energy storage. Copper phosphide represents a promising candidate due to its compact material density compared to commercial graphite. Herein, micro/nanostructured Cu(3)P/Cu encapsulated by carbon‐nanotube‐assembled hierarchical octahedral carbonaceous matrix (Cu(3)P/Cu@CNHO) is constructed by an in situ MOF‐derived engineering for novel anode material in LIBs, which achieves an extraordinary cycling stability (a well‐maintained gravimetric/volumetric capacity of 463.2 mAh g(−1)/1878.4 mAh cm(−3) at 1 A g(−1) up to 1600 cycles) and distinguished rate capability (an ameliorated capacity of 317.7 mAh g(−1) even at 10 A g(−1)), together with unprecedented heat‐resistant capability (an elevated temperature of 50 °C for 1000 cycles maintaining 434.7 mAh g(−1) at 0.5 A g(−1)). The superior electrochemical performance of Cu(3)P/Cu@CNHO is credited to the large specific surface area, conductive carbon matrix and metallic copper dopants, synergistic effects of the intrinsic Cu(3)P/Cu heterostructure, and well‐defined micro/nanostructure, facilitating a boosted electrochemical conductivity and accelerated diffusion kinetics. John Wiley and Sons Inc. 2020-05-29 /pmc/articles/PMC7375241/ /pubmed/32714768 http://dx.doi.org/10.1002/advs.202000736 Text en © 2020 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Lin, Jia
Zeng, Chenghui
Lin, Xiaoming
Xu, Chao
Su, Cheng‐Yong
CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
title CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
title_full CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
title_fullStr CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
title_full_unstemmed CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
title_short CNT‐Assembled Octahedron Carbon‐Encapsulated Cu(3)P/Cu Heterostructure by In Situ MOF‐Derived Engineering for Superior Lithium Storage: Investigations by Experimental Implementation and First‐Principles Calculation
title_sort cnt‐assembled octahedron carbon‐encapsulated cu(3)p/cu heterostructure by in situ mof‐derived engineering for superior lithium storage: investigations by experimental implementation and first‐principles calculation
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7375241/
https://www.ncbi.nlm.nih.gov/pubmed/32714768
http://dx.doi.org/10.1002/advs.202000736
work_keys_str_mv AT linjia cntassembledoctahedroncarbonencapsulatedcu3pcuheterostructurebyinsitumofderivedengineeringforsuperiorlithiumstorageinvestigationsbyexperimentalimplementationandfirstprinciplescalculation
AT zengchenghui cntassembledoctahedroncarbonencapsulatedcu3pcuheterostructurebyinsitumofderivedengineeringforsuperiorlithiumstorageinvestigationsbyexperimentalimplementationandfirstprinciplescalculation
AT linxiaoming cntassembledoctahedroncarbonencapsulatedcu3pcuheterostructurebyinsitumofderivedengineeringforsuperiorlithiumstorageinvestigationsbyexperimentalimplementationandfirstprinciplescalculation
AT xuchao cntassembledoctahedroncarbonencapsulatedcu3pcuheterostructurebyinsitumofderivedengineeringforsuperiorlithiumstorageinvestigationsbyexperimentalimplementationandfirstprinciplescalculation
AT suchengyong cntassembledoctahedroncarbonencapsulatedcu3pcuheterostructurebyinsitumofderivedengineeringforsuperiorlithiumstorageinvestigationsbyexperimentalimplementationandfirstprinciplescalculation