Spatially Confined Carbonization-Induced Reorganization of Microcrystals and Nanopores in Carbon Framework for Enhanced Sodium Plateau Storage

IF 26 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Advanced Energy Materials Pub Date : 2025-02-28 DOI:10.1002/aenm.202405294
Kunfang Wang, Fei Sun, Hua Wang, Dongyang Wu, Guangbo Zhao, Xin Su
{"title":"Spatially Confined Carbonization-Induced Reorganization of Microcrystals and Nanopores in Carbon Framework for Enhanced Sodium Plateau Storage","authors":"Kunfang Wang,&nbsp;Fei Sun,&nbsp;Hua Wang,&nbsp;Dongyang Wu,&nbsp;Guangbo Zhao,&nbsp;Xin Su","doi":"10.1002/aenm.202405294","DOIUrl":null,"url":null,"abstract":"<p>Non-graphitic carbons are considered as promising anode candidates for sodium-ion batteries (SIBs). Regulation of microcrystalline state and pore configuration of carbon anode is key to boost sodium plateau storage. Herein, a facile strategy is developed to create abundant closed nanopores and extensive pseudo-graphitic regions in carbon framework by the spatially confined carbonization of coal tar within the nanopores of commercial activated carbon (AC). The interlayer spacing, microcrystalline size, and nanopore structures of the obtained carbon materials can be facilely adjusted by changing the amount of coal tar and carbonization temperature. As expected, the optimized sample delivers an excellent sodium storage capacity of 361.7 mAh g<sup>−1</sup> at 0.1C with a high ICE value of 81.6%. The constructed full cell displays a high energy density of 254.3 Wh kg<sup>−1</sup> with an average voltage of 3.19 V. The detailed experimental studies and in/ex situ electrochemical tests reveal that the enhanced sodium plateau storage is related to the development of pseudo-graphitic phase and closed nanopores. In addition, the high mass loading electrode (≈11 mg cm<sup>−2</sup>) and 10-layered pouch full cell demonstrate excellent electrochemical performance. This work provides a practical strategy for collaboratively designing microcrystalline and closed pore structures in carbon anode for high-performance SIBs.</p>","PeriodicalId":111,"journal":{"name":"Advanced Energy Materials","volume":"15 24","pages":""},"PeriodicalIF":26.0000,"publicationDate":"2025-02-28","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Advanced Energy Materials","FirstCategoryId":"88","ListUrlMain":"https://advanced.onlinelibrary.wiley.com/doi/10.1002/aenm.202405294","RegionNum":1,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"CHEMISTRY, PHYSICAL","Score":null,"Total":0}
引用次数: 0

Abstract

Non-graphitic carbons are considered as promising anode candidates for sodium-ion batteries (SIBs). Regulation of microcrystalline state and pore configuration of carbon anode is key to boost sodium plateau storage. Herein, a facile strategy is developed to create abundant closed nanopores and extensive pseudo-graphitic regions in carbon framework by the spatially confined carbonization of coal tar within the nanopores of commercial activated carbon (AC). The interlayer spacing, microcrystalline size, and nanopore structures of the obtained carbon materials can be facilely adjusted by changing the amount of coal tar and carbonization temperature. As expected, the optimized sample delivers an excellent sodium storage capacity of 361.7 mAh g−1 at 0.1C with a high ICE value of 81.6%. The constructed full cell displays a high energy density of 254.3 Wh kg−1 with an average voltage of 3.19 V. The detailed experimental studies and in/ex situ electrochemical tests reveal that the enhanced sodium plateau storage is related to the development of pseudo-graphitic phase and closed nanopores. In addition, the high mass loading electrode (≈11 mg cm−2) and 10-layered pouch full cell demonstrate excellent electrochemical performance. This work provides a practical strategy for collaboratively designing microcrystalline and closed pore structures in carbon anode for high-performance SIBs.

Abstract Image

Abstract Image

Abstract Image

Abstract Image

Abstract Image

查看原文
分享 分享
微信好友 朋友圈 QQ好友 复制链接
本刊更多论文
碳框架中微晶和纳米孔的空间碳化诱导重组以增强钠的高原储存
非石墨碳被认为是钠离子电池(SIBs)极有前途的阳极候选材料。调节碳阳极的微晶态和孔隙结构是提高钠平台储存的关键。本文提出了一种简单的策略,通过在商业活性炭(AC)的纳米孔内进行煤焦油的空间限制碳化,在碳框架中产生丰富的封闭纳米孔和广泛的伪石墨区域。通过改变煤焦油的用量和炭化温度,可以很容易地调节碳材料的层间距、微晶尺寸和纳米孔结构。正如预期的那样,优化后的样品在0.1C时具有361.7 mAh g−1的优异钠存储容量,ICE值高达81.6%。该电池具有254.3 Wh kg−1的能量密度,平均电压为3.19 V。详细的实验研究和原位/非原位电化学测试表明,钠平台储存的增强与伪石墨相和封闭纳米孔的发育有关。此外,高质量负载电极(≈11 mg cm−2)和10层袋状满电池表现出优异的电化学性能。本研究为高性能sib碳阳极微晶和闭孔结构的协同设计提供了一种实用的策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
求助全文
约1分钟内获得全文 去求助
来源期刊
Advanced Energy Materials
Advanced Energy Materials CHEMISTRY, PHYSICAL-ENERGY & FUELS
CiteScore
41.90
自引率
4.00%
发文量
889
审稿时长
1.4 months
期刊介绍: Established in 2011, Advanced Energy Materials is an international, interdisciplinary, English-language journal that focuses on materials used in energy harvesting, conversion, and storage. It is regarded as a top-quality journal alongside Advanced Materials, Advanced Functional Materials, and Small. With a 2022 Impact Factor of 27.8, Advanced Energy Materials is considered a prime source for the best energy-related research. The journal covers a wide range of topics in energy-related research, including organic and inorganic photovoltaics, batteries and supercapacitors, fuel cells, hydrogen generation and storage, thermoelectrics, water splitting and photocatalysis, solar fuels and thermosolar power, magnetocalorics, and piezoelectronics. The readership of Advanced Energy Materials includes materials scientists, chemists, physicists, and engineers in both academia and industry. The journal is indexed in various databases and collections, such as Advanced Technologies & Aerospace Database, FIZ Karlsruhe, INSPEC (IET), Science Citation Index Expanded, Technology Collection, and Web of Science, among others.
期刊最新文献
Stick-and-Use Flexible K-Ion Microbatteries with Ultrahigh Power Density and Long Lifespan Via Electron-Ion Synergistic Tailoring Interfacial Osmium Nanoclusters on Molybdenum Boride Enable Reverse Hydrogen Spillover for Enhanced Hydrogen Evolution Electrochemical Stabilization of Polytetrafluoroethylene (PTFE) via Electronic Band Engineering Enables Long-Life, High-Energy-Density Li-Ion Batteries Synergistic Dual Electrolyte Additives for Long-Cycle Rechargeable Magnesium Batteries Operando X-Ray Diffraction and Total Scattering Characterization of Battery Materials: Not Just a Pretty Picture
×
引用
GB/T 7714-2015
复制
MLA
复制
APA
复制
导出至
BibTeX EndNote RefMan NoteFirst NoteExpress
×
×
提示
您的信息不完整,为了账户安全,请先补充。
现在去补充
×
提示
您因"违规操作"
具体请查看互助需知
我知道了
×
提示
现在去查看 取消
×
提示
确定
0
微信
客服QQ
Book学术公众号 扫码关注我们
反馈
×
意见反馈
请填写您的意见或建议
请填写您的手机或邮箱
已复制链接
已复制链接
快去分享给好友吧!
我知道了
×
扫码分享
扫码分享
Book学术官方微信
Book学术文献互助
Book学术文献互助群
群 号:604180095
Book学术
文献互助 智能选刊 最新文献 互助须知 联系我们:info@booksci.cn
Book学术提供免费学术资源搜索服务,方便国内外学者检索中英文文献。致力于提供最便捷和优质的服务体验。
Copyright © 2023 Book学术 All rights reserved.
ghs 京公网安备 11010802042870号 京ICP备2023020795号-1