Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage

With the swift advancement of the wearable electronic devices industry, the energy storage components of these devices must possess the capability to maintain stable mechanical and chemical properties after undergoing multiple bending or tensile deformations. This circumstance has expedited research...

Celý popis

Podrobná bibliografie
Hlavní autoři: Dehong Yang, Peng Xu, Chaofan Tian, Sen Li, Tao Xing, Zhi Li, Xuebin Wang, Pengcheng Dai
Médium: Článek
Jazyk:English
Vydáno: MDPI AG 2023-08-01
Edice:Molecules
Témata:
On-line přístup:https://www.mdpi.com/1420-3049/28/17/6377
_version_ 1827727976075100160
author Dehong Yang
Peng Xu
Chaofan Tian
Sen Li
Tao Xing
Zhi Li
Xuebin Wang
Pengcheng Dai
author_facet Dehong Yang
Peng Xu
Chaofan Tian
Sen Li
Tao Xing
Zhi Li
Xuebin Wang
Pengcheng Dai
author_sort Dehong Yang
collection DOAJ
description With the swift advancement of the wearable electronic devices industry, the energy storage components of these devices must possess the capability to maintain stable mechanical and chemical properties after undergoing multiple bending or tensile deformations. This circumstance has expedited research efforts toward novel electrode materials for flexible energy storage devices. Nonetheless, among the numerous materials investigated to date, the incorporation of metal current collectors or insulative adhesives remains requisite, which entails additional costs, unnecessary weight, and high contact resistance. At present, biomass-derived flexible architectures stand out as a promising choice in electrochemical energy device applications. Flexible self-supporting properties impart a heightened mechanical performance, obviating the need for additional binders and lowering the contact resistance. Renewable, earth-abundant biomass endows these materials with cost-effectiveness, diversity, and modulable chemical properties. To fully exploit the application potential in biomass-derived flexible carbon architectures, understanding the latest advancements and the comprehensive foundation behind their synthesis assumes significance. This review delves into the comprehensive analysis of biomass feedstocks and methods employed in the synthesis of flexible self-supporting carbon electrodes. Subsequently, the advancements in their application in energy storage devices are elucidated. Finally, an outlook on the potential of flexible carbon architectures and the challenges they face is provided.
first_indexed 2024-03-10T23:16:31Z
format Article
id doaj.art-8f11e5f7752a41e9afb6f23f8f19fa6c
institution Directory Open Access Journal
issn 1420-3049
language English
last_indexed 2024-03-10T23:16:31Z
publishDate 2023-08-01
publisher MDPI AG
record_format Article
series Molecules
spelling doaj.art-8f11e5f7752a41e9afb6f23f8f19fa6c2023-11-19T08:35:09ZengMDPI AGMolecules1420-30492023-08-012817637710.3390/molecules28176377Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy StorageDehong Yang0Peng Xu1Chaofan Tian2Sen Li3Tao Xing4Zhi Li5Xuebin Wang6Pengcheng Dai7College of New Energy, China University of Petroleum (East China), Qingdao 266580, ChinaCollege of New Energy, China University of Petroleum (East China), Qingdao 266580, ChinaCollege of New Energy, China University of Petroleum (East China), Qingdao 266580, ChinaCollege of New Energy, China University of Petroleum (East China), Qingdao 266580, ChinaNew Energy Division, National Engineering Research Center of Coal Gasification and Coal-Based Advanced Materials, Shandong Energy Group Co., Ltd., Jining 273500, ChinaNew Energy Division, National Engineering Research Center of Coal Gasification and Coal-Based Advanced Materials, Shandong Energy Group Co., Ltd., Jining 273500, ChinaNational Laboratory of Solid State Microstructures (NLSSM), Collaborative Innovation Center of Advanced Microstructures, College of Engineering and Applied Sciences, Nanjing University, Nanjing 210093, ChinaCollege of New Energy, China University of Petroleum (East China), Qingdao 266580, ChinaWith the swift advancement of the wearable electronic devices industry, the energy storage components of these devices must possess the capability to maintain stable mechanical and chemical properties after undergoing multiple bending or tensile deformations. This circumstance has expedited research efforts toward novel electrode materials for flexible energy storage devices. Nonetheless, among the numerous materials investigated to date, the incorporation of metal current collectors or insulative adhesives remains requisite, which entails additional costs, unnecessary weight, and high contact resistance. At present, biomass-derived flexible architectures stand out as a promising choice in electrochemical energy device applications. Flexible self-supporting properties impart a heightened mechanical performance, obviating the need for additional binders and lowering the contact resistance. Renewable, earth-abundant biomass endows these materials with cost-effectiveness, diversity, and modulable chemical properties. To fully exploit the application potential in biomass-derived flexible carbon architectures, understanding the latest advancements and the comprehensive foundation behind their synthesis assumes significance. This review delves into the comprehensive analysis of biomass feedstocks and methods employed in the synthesis of flexible self-supporting carbon electrodes. Subsequently, the advancements in their application in energy storage devices are elucidated. Finally, an outlook on the potential of flexible carbon architectures and the challenges they face is provided.https://www.mdpi.com/1420-3049/28/17/6377biomasscarbonflexibleself-standing electrodesenergy storage
spellingShingle Dehong Yang
Peng Xu
Chaofan Tian
Sen Li
Tao Xing
Zhi Li
Xuebin Wang
Pengcheng Dai
Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage
Molecules
biomass
carbon
flexible
self-standing electrodes
energy storage
title Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage
title_full Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage
title_fullStr Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage
title_full_unstemmed Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage
title_short Biomass-Derived Flexible Carbon Architectures as Self-Supporting Electrodes for Energy Storage
title_sort biomass derived flexible carbon architectures as self supporting electrodes for energy storage
topic biomass
carbon
flexible
self-standing electrodes
energy storage
url https://www.mdpi.com/1420-3049/28/17/6377
work_keys_str_mv AT dehongyang biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT pengxu biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT chaofantian biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT senli biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT taoxing biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT zhili biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT xuebinwang biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage
AT pengchengdai biomassderivedflexiblecarbonarchitecturesasselfsupportingelectrodesforenergystorage