The induced formation and regulation of closed-pore structure for biomass hard carbon as anode in sodium-ion batteries

被引:10
作者
Peng, Jiao [1 ]
Tan, Haidi [2 ]
Tang, Yi [1 ]
Yang, Juan [1 ]
Liu, Peng [1 ]
Liu, Jiali [1 ]
Zhou, Kangjie [1 ]
Zeng, Peng [3 ]
He, Li [1 ]
Wang, Xianyou [1 ]
机构
[1] Xiangtan Univ, Sch Chem,Natl Base Int Sci & Technol Cooperat, Natl Local Joint Engn Lab Key Mat New Energy Stora, Hunan Prov Key Lab Electrochem Energy Storage & Co, Xiangtan 411105, Hunan, Peoples R China
[2] Univ Calif Berkeley, Coll Chem, Berkeley, CA 94720 USA
[3] Hunan Univ Sci & Technol, Sch Chem & Chem Engn, Key Lab Theoret Organ Chem & Funct Mol, Minist Educ, Xiangtan 411201, Peoples R China
基金
中国国家自然科学基金;
关键词
Anode material; Biomass hard carbon; Camellia seed shell; Carbonization temperature; Sodium-ion batteries; PERFORMANCE; SHELLS;
D O I
10.1016/j.est.2024.113864
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Biomass hard carbon is regarded as an advanced anode materials for sodium ion batteries (SIBs) since it possesses balanced performance including satisfactory specific capacity, suitable operating voltage window and low cost. Although numerous instances of utilizing biomass-derived hard carbon in SIBs have been observed, the unregulated pore structure of these hard carbon materials significantly constrains the electrochemical performance of SIBs, leading to diminished initial Columbic efficiency (ICE) and plateau capacity. Herein, taking a biomass hard carbon derived from waste camellia seed shells (CSSHCs) as a template, we display a correlation between synthesis conditions and pore structure of CSSHCs. CSSHCs are synthesized via a facile route including pre-carbonization, purifying, mechanical ball-milling and high-temperature carbonization, and it is found that adjusting the secondary calcination temperature can induce the formation of closed pore structure, which is of great benefit to increase the ICE and the plateau-capacity. Besides, it is also proved that the obtained CSSHCs anodes obey a sodium storage mechanism that can be classified as "adsorption-intercalation-pore filling", which endows SIBs with a competitive electrochemical performance. Specifically, the obtained biomass hard carbons at 1300 degrees C exhibits the best electrochemical performance among these anodes with the reversible capacity of as high as 270.0 mAh g(-1 )and a high ICE of 80.1 %, together with an excellent cycle stability (91.0 % capacity retention after 200 cycles at 0.1C, 1C = 300 mA g(-1)). Therefore, this study provides a significant exploration and raw material support for the further utilization of the waste biomass and sustainable development of the anode materials for the large-scale application of SIBs.
引用
收藏
页数:10
相关论文
共 61 条
[1]   Plant-derived hard carbon as anode for sodium-ion batteries: A comprehensive review to guide interdisciplinary research [J].
Alvira, Dario ;
Antoran, Daniel ;
Manya, J. Joan .
CHEMICAL ENGINEERING JOURNAL, 2022, 447
[2]   Pre-Oxidation Strategy Transforming Waste Foam to Hard Carbon Anodes for Boosting Sodium Storage Performance [J].
Chen, Yuefang ;
Sun, Heyi ;
He, Xiang-Xi ;
Chen, Qinghang ;
Zhao, Jia-Hua ;
Wei, Yanhao ;
Wu, Xingqiao ;
Zhang, Zhijia ;
Jiang, Yong ;
Chou, Shu-Lei .
SMALL, 2024, 20 (12)
[3]   Engineering Ultrathin Carbon Layer on Porous Hard Carbon Boosts Sodium Storage with High Initial Coulombic Efficiency [J].
Cheng, Dejian ;
Li, Zhenghui ;
Zhang, Minglu ;
Duan, Zhihua ;
Wang, Jun ;
Wang, Chaoyang .
ACS NANO, 2023, 17 (19) :19063-19075
[4]   Electrochemical storage mechanism of sodium in carbon materials: A study from soft carbon to hard carbon [J].
Cheng, Dejian ;
Zhou, Xiuqing ;
Hu, Huanying ;
Li, Zhenghui ;
Chen, Jun ;
Miao, Lei ;
Ye, Xiaoji ;
Zhang, Haiyan .
CARBON, 2021, 182 :758-769
[5]   Reconfiguring Hard Carbons with Emerging Sodium-Ion Batteries: A Perspective [J].
Chu, Yue ;
Zhang, Jun ;
Zhang, Yibo ;
Li, Qi ;
Jia, Yiran ;
Dong, Ximan ;
Xiao, Jing ;
Tao, Ying ;
Yang, Quan-Hong .
ADVANCED MATERIALS, 2023, 35 (31)
[6]   Synthesis of hard carbon from argan shells for Na-ion batteries [J].
Dahbi, Mouad ;
Kiso, Manami ;
Kubota, Kei ;
Horiba, Tatsuo ;
Chafik, Tarik ;
Hida, Kazuo ;
Matsuyama, Takashi ;
Komaba, Shinichi .
JOURNAL OF MATERIALS CHEMISTRY A, 2017, 5 (20) :9917-9928
[7]   Apricot shell derived hard carbons and their tin oxide composites as anode materials for sodium-ion batteries [J].
Demir, Emrah ;
Aydin, Meral ;
Arie, Arenst Andreas ;
Demir-Cakan, Rezan .
JOURNAL OF ALLOYS AND COMPOUNDS, 2019, 788 :1093-1102
[8]   Tailoring Defects in Hard Carbon Anode towards Enhanced Na Storage Performance [J].
Dong, Ruiqi ;
Wu, Feng ;
Bai, Ying ;
Li, Qinghao ;
Yu, Xiqian ;
Li, Yu ;
Ni, Qiao ;
Wu, Chuan .
ENERGY MATERIAL ADVANCES, 2022, 2022
[9]   Hard carbons for sodium-ion batteries: Structure, analysis, sustainability, and electrochemistry [J].
Dou, Xinwei ;
Hasa, Ivana ;
Saurel, Damien ;
Vaalma, Christoph ;
Wu, Liming ;
Buchholz, Daniel ;
Bresser, Dominic ;
Komaba, Shinichi ;
Passerini, Stefano .
MATERIALS TODAY, 2019, 23 :87-104
[10]   Untangling the respective effects of heteroatom-doped carbon materials in batteries, supercapacitors and the ORR to design high performance materials [J].
Feng, Xin ;
Bai, Ying ;
Liu, Mingquan ;
Li, Ying ;
Yang, Haoyi ;
Wang, Xinran ;
Wu, Chuan .
ENERGY & ENVIRONMENTAL SCIENCE, 2021, 14 (04) :2036-2089