• 文献检索
  • 文档翻译
  • 深度研究
  • 学术资讯
  • Suppr Zotero 插件Zotero 插件
  • 邀请有礼
  • 套餐&价格
  • 历史记录
应用&插件
Suppr Zotero 插件Zotero 插件浏览器插件Mac 客户端Windows 客户端微信小程序
定价
高级版会员购买积分包购买API积分包
服务
文献检索文档翻译深度研究API 文档MCP 服务
关于我们
关于 Suppr公司介绍联系我们用户协议隐私条款
关注我们

Suppr 超能文献

核心技术专利:CN118964589B侵权必究
粤ICP备2023148730 号-1Suppr @ 2026

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验

钠离子电池碳负极材料综述:关键材料、储钠机制、应用及大规模设计原则

A Review of Carbon Anode Materials for Sodium-Ion Batteries: Key Materials, Sodium-Storage Mechanisms, Applications, and Large-Scale Design Principles.

作者信息

Jia Qixing, Li Zeyuan, Ruan Hulong, Luo Dawei, Wang Junjun, Ding Zhiyu, Chen Lina

机构信息

School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen 518055, China.

Xinjiang Key Laboratory of High Value Green Utilization of Low-rank Coal, Changji 831100, China.

出版信息

Molecules. 2024 Sep 12;29(18):4331. doi: 10.3390/molecules29184331.

DOI:10.3390/molecules29184331
PMID:39339325
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11433841/
Abstract

Sodium-ion batteries (SIBs) have been proposed as a potential substitute for commercial lithium-ion batteries due to their excellent storage performance and cost-effectiveness. However, due to the substantial radius of sodium ions, there is an urgent need to develop anode materials with exemplary electrochemical characteristics, thereby enabling the fabrication of sodium-ion batteries with high energy density and rapid dynamics. Carbon materials are highly valued in the energy-storage field due to their diverse structures, low cost, and high reliability. This review comprehensively summarizes the typical structure; energy-storage mechanisms; and current development status of various carbon-based anode materials for SIBs, such as hard carbon, soft carbon, graphite, graphene, carbon nanotubes (CNTs), and porous carbon materials. This review also provides an overview of the current status and future development of related companies for sodium-ion batteries. Furthermore, it offers a summary and outlook on the challenges and opportunities associated with the design principles and large-scale production of carbon materials with high-energy-density requirements. This review offers an avenue for exploring outstanding improvement strategies for carbon materials, which can provide guidance for future application and research.

摘要

钠离子电池(SIBs)因其出色的存储性能和成本效益,已被提议作为商用锂离子电池的潜在替代品。然而,由于钠离子半径较大,迫切需要开发具有优异电化学特性的负极材料,从而制造出具有高能量密度和快速动力学的钠离子电池。碳材料因其结构多样、成本低和可靠性高,在储能领域备受重视。本文综述全面总结了用于钠离子电池的各种碳基负极材料,如硬碳、软碳、石墨、石墨烯、碳纳米管(CNTs)和多孔碳材料的典型结构、储能机制及当前发展现状。本文还概述了钠离子电池相关公司的现状和未来发展。此外,它对与高能量密度要求的碳材料设计原则和大规模生产相关的挑战与机遇进行了总结和展望。本文为探索碳材料的卓越改进策略提供了一条途径,可为未来的应用和研究提供指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/2f7822e75742/molecules-29-04331-g021.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/0b2ac2b8737e/molecules-29-04331-g013.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/7ddef38f53f0/molecules-29-04331-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/0c7a2e12f5d1/molecules-29-04331-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/eac52cfa20f3/molecules-29-04331-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/9217f0ace78b/molecules-29-04331-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/a7028822ea85/molecules-29-04331-g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/bedfc9944fda/molecules-29-04331-g006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/29436fcba2f7/molecules-29-04331-g007.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/839d5dc10772/molecules-29-04331-g008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/cb303bbd9467/molecules-29-04331-g009.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/b2699b078d35/molecules-29-04331-g010.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/146baf7b13a6/molecules-29-04331-g011.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/75c794ee713e/molecules-29-04331-g012.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/6f139c418aa6/molecules-29-04331-g014.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/a7acfa04edde/molecules-29-04331-g015.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/605358e3c158/molecules-29-04331-g016.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/6668c4367c61/molecules-29-04331-g017.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/0c8ce457a983/molecules-29-04331-g018.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/4df97b403b52/molecules-29-04331-g019.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/d7a6aeec95a2/molecules-29-04331-g020.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/2f7822e75742/molecules-29-04331-g021.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/0b2ac2b8737e/molecules-29-04331-g013.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/7ddef38f53f0/molecules-29-04331-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/0c7a2e12f5d1/molecules-29-04331-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/eac52cfa20f3/molecules-29-04331-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/9217f0ace78b/molecules-29-04331-g004.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/a7028822ea85/molecules-29-04331-g005.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/bedfc9944fda/molecules-29-04331-g006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/29436fcba2f7/molecules-29-04331-g007.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/839d5dc10772/molecules-29-04331-g008.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/cb303bbd9467/molecules-29-04331-g009.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/b2699b078d35/molecules-29-04331-g010.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/146baf7b13a6/molecules-29-04331-g011.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/75c794ee713e/molecules-29-04331-g012.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/6f139c418aa6/molecules-29-04331-g014.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/a7acfa04edde/molecules-29-04331-g015.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/605358e3c158/molecules-29-04331-g016.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/6668c4367c61/molecules-29-04331-g017.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/0c8ce457a983/molecules-29-04331-g018.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/4df97b403b52/molecules-29-04331-g019.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/d7a6aeec95a2/molecules-29-04331-g020.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/297b/11433841/2f7822e75742/molecules-29-04331-g021.jpg

相似文献

1
A Review of Carbon Anode Materials for Sodium-Ion Batteries: Key Materials, Sodium-Storage Mechanisms, Applications, and Large-Scale Design Principles.钠离子电池碳负极材料综述:关键材料、储钠机制、应用及大规模设计原则
Molecules. 2024 Sep 12;29(18):4331. doi: 10.3390/molecules29184331.
2
High-Performance Sodium-Ion Batteries with Graphene: An Overview of Recent Developments and Design.含石墨烯的高性能钠离子电池:近期进展与设计概述
ChemSusChem. 2025 Jan 14;18(2):e202400958. doi: 10.1002/cssc.202400958. Epub 2024 Oct 16.
3
The Progress of Hard Carbon as an Anode Material in Sodium-Ion Batteries.硬碳作为钠离子电池负极材料的研究进展。
Molecules. 2023 Mar 31;28(7):3134. doi: 10.3390/molecules28073134.
4
Recent Advances in Carbon Anodes for Sodium-Ion Batteries.钠离子电池碳负极的最新进展
Chem Rec. 2022 Oct;22(10):e202200083. doi: 10.1002/tcr.202200083. Epub 2022 Jun 7.
5
Hard Carbons as Anodes in Sodium-Ion Batteries: Sodium Storage Mechanism and Optimization Strategies.硬碳作为钠离子电池的负极:储钠机制与优化策略
Molecules. 2022 Oct 2;27(19):6516. doi: 10.3390/molecules27196516.
6
Carbon and Carbon Hybrid Materials as Anodes for Sodium-Ion Batteries.碳及其杂化材料作为钠离子电池的负极材料。
Chem Asian J. 2018 May 18;13(10):1248-1265. doi: 10.1002/asia.201800132. Epub 2018 Apr 19.
7
Recent progress on hard carbon and other anode materials for sodium-ion batteries.钠离子电池硬碳及其他负极材料的最新进展
Heliyon. 2024 Apr 10;10(8):e29512. doi: 10.1016/j.heliyon.2024.e29512. eCollection 2024 Apr 30.
8
Hierarchical Nitrogen-Doped Porous Carbon Microspheres as Anode for High Performance Sodium Ion Batteries.用于高性能钠离子电池阳极的分级氮掺杂多孔碳微球
Front Chem. 2019 Oct 31;7:733. doi: 10.3389/fchem.2019.00733. eCollection 2019.
9
Advanced Anode Materials for Rechargeable Sodium-Ion Batteries.用于可充电钠离子电池的先进阳极材料。
ACS Nano. 2023 Jun 27;17(12):11220-11252. doi: 10.1021/acsnano.3c02892. Epub 2023 Jun 8.
10
Recent Progress in Amorphous Carbon-Based Materials for Anodes of Sodium-Ion Batteries: Synthesis Strategies, Mechanisms, and Performance.用于钠离子电池负极的非晶碳基材料的最新进展:合成策略、机理及性能
ChemSusChem. 2021 Sep 20;14(18):3693-3723. doi: 10.1002/cssc.202101270. Epub 2021 Aug 5.

本文引用的文献

1
Optimizing Hard Carbon Anodes from Agricultural Biomass for Superior Lithium and Sodium Ion Battery Performance.优化源自农业生物质的硬碳阳极以实现卓越的锂离子和钠离子电池性能。
ChemSusChem. 2025 Jan 14;18(2):e202400970. doi: 10.1002/cssc.202400970. Epub 2024 Oct 10.
2
Carbon Micro/Nano Machining toward Miniaturized Device: Structural Engineering, Large-Scale Fabrication, and Performance Optimization.面向微型化设备的碳微纳加工:结构工程、大规模制造及性能优化
Small. 2024 Jul 19:e2400179. doi: 10.1002/smll.202400179.
3
Mechanical Activation of Graphite for Na-Ion Battery Anodes: Unexpected Reversible Reaction on Solid Electrolyte Interphase via X-Ray Analysis.
用于钠离子电池负极的石墨机械活化:通过X射线分析对固体电解质界面意外的可逆反应
Adv Sci (Weinh). 2024 Jul;11(28):e2401022. doi: 10.1002/advs.202401022. Epub 2024 Apr 26.
4
Revealing Na-coordination induced Failure Mechanism of Metal Sulfide Anode for Sodium Ion Batteries.揭示钠离子电池金属硫化物负极中钠配位诱导的失效机制
Angew Chem Int Ed Engl. 2024 Jul 1;63(27):e202403463. doi: 10.1002/anie.202403463. Epub 2024 May 29.
5
Two-dimensional monolayer C: a metallic carbon allotrope as an anode material for high-performance sodium/potassium-ion batteries.二维单层碳:一种作为高性能钠/钾离子电池负极材料的金属碳同素异形体。
Phys Chem Chem Phys. 2024 May 1;26(17):13395-13404. doi: 10.1039/d3cp05553a.
6
Investigating the Superior Performance of Hard Carbon Anodes in Sodium-Ion Compared With Lithium- and Potassium-Ion Batteries.研究硬碳负极在钠离子电池中相较于锂离子电池和钾离子电池的卓越性能。
Adv Mater. 2023 Oct;35(42):e2304091. doi: 10.1002/adma.202304091. Epub 2023 Sep 13.
7
Advanced Anode Materials for Rechargeable Sodium-Ion Batteries.用于可充电钠离子电池的先进阳极材料。
ACS Nano. 2023 Jun 27;17(12):11220-11252. doi: 10.1021/acsnano.3c02892. Epub 2023 Jun 8.
8
Interface Engineering of FeS/FeS Heterostructure in situ Encapsulated into Nitrogen-Doped Carbon Nanotubes for High Power Sodium-Ion Batteries.原位封装在氮掺杂碳纳米管中的FeS/FeS异质结构用于高功率钠离子电池的界面工程
Nanomicro Lett. 2023 Apr 30;15(1):118. doi: 10.1007/s40820-023-01082-w.
9
Boosting the Reversible, High-Rate Na Storage Capability of the Hard Carbon Anode Via the Synergistic Structural Tailoring and Controlled Presodiation.通过协同结构调控和可控预钠化提高硬碳负极的可逆、高倍率钠离子存储能力。
Small. 2023 May;19(21):e2207638. doi: 10.1002/smll.202207638. Epub 2023 Feb 26.
10
On the Road to the Frontiers of Lithium-Ion Batteries: A Review and Outlook of Graphene Anodes.迈向锂离子电池前沿之路:石墨烯阳极的综述与展望。
Adv Mater. 2023 Apr;35(16):e2210734. doi: 10.1002/adma.202210734. Epub 2023 Feb 25.