Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes

Abstract Liquid sodium‐potassium (Na‐K) alloy has the characteristics of high abundance, low redox potential, high capacity, and no dendrites, which has become an ideal alternative material for potassium/sodium metal anodes. However, the high surface tension of liquid sodium potassium alloy at room...

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Main Authors: Jianyi Wang, Menghui Chen, Zicong Lu, Zhida Chen, Liping Si
Format: Article
Language:English
Published: Wiley 2022-09-01
Series:Advanced Science
Subjects:
Online Access:https://doi.org/10.1002/advs.202203058
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author Jianyi Wang
Menghui Chen
Zicong Lu
Zhida Chen
Liping Si
author_facet Jianyi Wang
Menghui Chen
Zicong Lu
Zhida Chen
Liping Si
author_sort Jianyi Wang
collection DOAJ
description Abstract Liquid sodium‐potassium (Na‐K) alloy has the characteristics of high abundance, low redox potential, high capacity, and no dendrites, which has become an ideal alternative material for potassium/sodium metal anodes. However, the high surface tension of liquid sodium potassium alloy at room temperature makes it inconvenient in practical use. Here, the Na‐K as reducing agent treats with hydrazone linkages of covalent organic frameworks (COFs) and obtain the carbon‐oxygen radical COFs (COR‐Tf‐DHzDM‐COFs). The preparation method solves the problems that the preparation process of the traditional Na‐K composite anode is complex and has high cost. The structures of the COR‐Tf‐DHzDM‐COFs are characterized by X‐ray diffraction (XRD), fourier transform infrared (FT‐IR), electron paramagnetic resonance (EPR), and solid‐state NMR measurements. It is the first time that carbon‐oxygen radical COFs from bulk COFs are constructed by one‐step method and the operation is flexible, convenient, and high rate of quality, which is suitable for big production and widely used. The cycle stability of the composite Na‐K anode is improved, which provides a new idea for the design of high‐performance liquid metal anode.
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spelling doaj.art-40bc8aeb64c644fa97d92f793f46fb932023-05-29T04:01:39ZengWileyAdvanced Science2198-38442022-09-01926n/an/a10.1002/advs.202203058Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal AnodesJianyi Wang0Menghui Chen1Zicong Lu2Zhida Chen3Liping Si4School of Materials Science and Hydrogen Energy Foshan University Foshan 528000 P. R. ChinaInstitute for Sustainable Energy/College of Sciences Shanghai University Shanghai 200444 P. R. ChinaSchool of Materials Science and Hydrogen Energy Foshan University Foshan 528000 P. R. ChinaSchool of Materials Science and Hydrogen Energy Foshan University Foshan 528000 P. R. ChinaSchool of Materials Science and Hydrogen Energy Foshan University Foshan 528000 P. R. ChinaAbstract Liquid sodium‐potassium (Na‐K) alloy has the characteristics of high abundance, low redox potential, high capacity, and no dendrites, which has become an ideal alternative material for potassium/sodium metal anodes. However, the high surface tension of liquid sodium potassium alloy at room temperature makes it inconvenient in practical use. Here, the Na‐K as reducing agent treats with hydrazone linkages of covalent organic frameworks (COFs) and obtain the carbon‐oxygen radical COFs (COR‐Tf‐DHzDM‐COFs). The preparation method solves the problems that the preparation process of the traditional Na‐K composite anode is complex and has high cost. The structures of the COR‐Tf‐DHzDM‐COFs are characterized by X‐ray diffraction (XRD), fourier transform infrared (FT‐IR), electron paramagnetic resonance (EPR), and solid‐state NMR measurements. It is the first time that carbon‐oxygen radical COFs from bulk COFs are constructed by one‐step method and the operation is flexible, convenient, and high rate of quality, which is suitable for big production and widely used. The cycle stability of the composite Na‐K anode is improved, which provides a new idea for the design of high‐performance liquid metal anode.https://doi.org/10.1002/advs.202203058alkali metal batteriescovalent organic frameworksNa‐K alloysself‐healingstable ability
spellingShingle Jianyi Wang
Menghui Chen
Zicong Lu
Zhida Chen
Liping Si
Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes
Advanced Science
alkali metal batteries
covalent organic frameworks
Na‐K alloys
self‐healing
stable ability
title Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes
title_full Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes
title_fullStr Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes
title_full_unstemmed Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes
title_short Retracted: Radical Covalent Organic Frameworks Associated with Liquid Na‐K toward Dendrite‐Free Alkali Metal Anodes
title_sort retracted radical covalent organic frameworks associated with liquid na k toward dendrite free alkali metal anodes
topic alkali metal batteries
covalent organic frameworks
Na‐K alloys
self‐healing
stable ability
url https://doi.org/10.1002/advs.202203058
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