Cargando…

A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability

Chloride ion batteries (CIBs) have drawn growing attention as attractive candidates for large-scale energy storage technology because of their high theoretical energy densities (2500 W h L(−1)), dendrite-free characteristics and abundance of chloride-containing materials available worldwide. However...

Descripción completa

Detalles Bibliográficos
Autores principales: Yin, Qing, Song, Zhihao, Yang, Shuhan, Wang, Gang-Ding, Sui, Yanwei, Qi, Jiqiu, Zhao, Danyang, Hou, Lei, Li, Yong-Zhi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10231316/
https://www.ncbi.nlm.nih.gov/pubmed/37265732
http://dx.doi.org/10.1039/d3sc01497e
_version_ 1785051717602115584
author Yin, Qing
Song, Zhihao
Yang, Shuhan
Wang, Gang-Ding
Sui, Yanwei
Qi, Jiqiu
Zhao, Danyang
Hou, Lei
Li, Yong-Zhi
author_facet Yin, Qing
Song, Zhihao
Yang, Shuhan
Wang, Gang-Ding
Sui, Yanwei
Qi, Jiqiu
Zhao, Danyang
Hou, Lei
Li, Yong-Zhi
author_sort Yin, Qing
collection PubMed
description Chloride ion batteries (CIBs) have drawn growing attention as attractive candidates for large-scale energy storage technology because of their high theoretical energy densities (2500 W h L(−1)), dendrite-free characteristics and abundance of chloride-containing materials available worldwide. However, the further development of CIBs is greatly limited by sluggish Cl(−) diffusion and distinct structural variation of cathode materials, resulting in severe decayed capacity and inferior rate performance. Metal–organic framework (MOF) materials possess regular pores/channels and flexible structural designability to accommodate charge carrier ions, but the application of MOFs in anion-type batteries has not been reported. Here, we demonstrate the first example of Ni(dpip) with two different opening sizes of tubular channels serving as the cathode for high performance CIBs. The Ni-based MOF exhibited a stable reversible capacity of 155 mA h g(−1) with an admirable low capacity decay of 0.026% per cycle over 500 cycles and superior kinetics with a 10(−10) cm(2) s(−1) average diffusion coefficient for chloride ions as well. The high performance of the Ni(dpip) cathode results from the synergetic redox couples of Ni metal nodes and N-ligands, the unique double-channel structure for reversible Cl-storage, and the low chloride diffusion energy barrier. This work switches on the new application of MOF-based materials as cathodes for CIBs.
format Online
Article
Text
id pubmed-10231316
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-102313162023-06-01 A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability Yin, Qing Song, Zhihao Yang, Shuhan Wang, Gang-Ding Sui, Yanwei Qi, Jiqiu Zhao, Danyang Hou, Lei Li, Yong-Zhi Chem Sci Chemistry Chloride ion batteries (CIBs) have drawn growing attention as attractive candidates for large-scale energy storage technology because of their high theoretical energy densities (2500 W h L(−1)), dendrite-free characteristics and abundance of chloride-containing materials available worldwide. However, the further development of CIBs is greatly limited by sluggish Cl(−) diffusion and distinct structural variation of cathode materials, resulting in severe decayed capacity and inferior rate performance. Metal–organic framework (MOF) materials possess regular pores/channels and flexible structural designability to accommodate charge carrier ions, but the application of MOFs in anion-type batteries has not been reported. Here, we demonstrate the first example of Ni(dpip) with two different opening sizes of tubular channels serving as the cathode for high performance CIBs. The Ni-based MOF exhibited a stable reversible capacity of 155 mA h g(−1) with an admirable low capacity decay of 0.026% per cycle over 500 cycles and superior kinetics with a 10(−10) cm(2) s(−1) average diffusion coefficient for chloride ions as well. The high performance of the Ni(dpip) cathode results from the synergetic redox couples of Ni metal nodes and N-ligands, the unique double-channel structure for reversible Cl-storage, and the low chloride diffusion energy barrier. This work switches on the new application of MOF-based materials as cathodes for CIBs. The Royal Society of Chemistry 2023-04-24 /pmc/articles/PMC10231316/ /pubmed/37265732 http://dx.doi.org/10.1039/d3sc01497e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Yin, Qing
Song, Zhihao
Yang, Shuhan
Wang, Gang-Ding
Sui, Yanwei
Qi, Jiqiu
Zhao, Danyang
Hou, Lei
Li, Yong-Zhi
A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
title A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
title_full A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
title_fullStr A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
title_full_unstemmed A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
title_short A nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
title_sort nickel-based metal–organic framework as a new cathode for chloride ion batteries with superior cycling stability
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10231316/
https://www.ncbi.nlm.nih.gov/pubmed/37265732
http://dx.doi.org/10.1039/d3sc01497e
work_keys_str_mv AT yinqing anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT songzhihao anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT yangshuhan anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT wanggangding anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT suiyanwei anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT qijiqiu anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT zhaodanyang anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT houlei anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT liyongzhi anickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT yinqing nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT songzhihao nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT yangshuhan nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT wanggangding nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT suiyanwei nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT qijiqiu nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT zhaodanyang nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT houlei nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability
AT liyongzhi nickelbasedmetalorganicframeworkasanewcathodeforchlorideionbatterieswithsuperiorcyclingstability