Enhanced storage capability by biomass-derived porous carbon for lithium-ion and sodium-ion battery anodes

被引:49
作者
Hao, Jian [1 ]
Wang, Yanxia [1 ]
Chi, Caixia [2 ]
Wang, Jing [4 ]
Guo, Qingjie [1 ]
Yang, Yu [2 ]
Li, Yao [3 ]
Liu, Xiaoxu [2 ]
Zhao, Jiupeng [2 ]
机构
[1] Ningxia Univ, Coll Chem & Chem Engn, State Key Lab High Efficiency Utilizat Coal & Gre, Yinchuan 750021, Peoples R China
[2] Harbin Inst Technol, Sch Chem & Chem Engn, Harbin 150001, Heilongjiang, Peoples R China
[3] Harbin Inst Technol, Ctr Composite Mat, Harbin 150001, Heilongjiang, Peoples R China
[4] Harbin Univ Commerce, Sch Light Ind, Harbin 150028, Heilongjiang, Peoples R China
关键词
HIGH-PERFORMANCE ANODE; ELECTROCHEMICAL PERFORMANCE; HARD CARBON; GRAPHENE; LI; SUPERCAPACITORS; ELECTRODES;
D O I
10.1039/c8se00353j
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Efficient electrodes with impressive storage capability and fast ion transfer rate are urgently needed to meet the demand for higher energy/power densities and longer life cycles and large rate powering devices. Through a simple freeze-drying and annealing process, nitrogen-containing porous carbon materials with a hierarchical porous structure and enlarged lattice spacing between graphene layers are synthesized. Benefiting from an improvement in the electrochemical activity, porosity, conductive network and mechanical stability, the porous carbon used as anodes for lithium-ion batteries (LIBs) and sodium-ion batteries (SIBs) exhibits an excellent storage capability, rate performance, and cyclability. Apple carbon exhibits a high capacity of 1050 mA h g(-1), and celery carbon shows the reversible capacities of 990 mA h g(-1) at 0.1 A g(-1) after the 200th cycle as LIBs anodes. For SIBs, a high capacity of 438 mA h g(-1) is obtained after 200 cycles for apple carbon and 451 mA h g(-1) for celery carbon. It is noteworthy that celery carbon shows a capacity retention of 94% between the 50th to 200th cycling. Further analysis on the structure characterization and charging curves reveal that celery carbon has a high N content, dilated intergraphene spacing, and an intrinsically hierarchical porous structure, which are capable of reversibly accumulating sodium ions through surface adsorption and sodium intercalation. Also, the electrochemical impedance spectroscopy (EIS) reveals that celery carbon has a low charge-transfer resistance, the enhanced cyclability and rate performance might be attributed to convenient ion diffusion in the electrode.
引用
收藏
页码:2358 / 2365
页数:8
相关论文
共 50 条
[41]   Preceramic polymer derived carbon encapsulated Si-C hybrids for lithium-ion battery anodes [J].
Bishoyi, Smita S. ;
Mohanta, Tandra R. ;
Behera, Shantanu K. .
JOURNAL OF ALLOYS AND COMPOUNDS, 2024, 1002
[42]   Impact of the Acid Treatment on Lignocellulosic Biomass Hard Carbon for Sodium-Ion Battery Anodes [J].
Dou, Xinwei ;
Hasa, Ivana ;
Saurel, Damien ;
Jauregui, Maria ;
Buchholz, Daniel ;
Rojo, Teofilo ;
Passerini, Stefano .
CHEMSUSCHEM, 2018, 11 (18) :3276-3285
[43]   Noncrystalline Carbon Anodes for Advanced Sodium-Ion Storage [J].
Han, Xu ;
Zhou, Shuhao ;
Liu, Huan ;
Leng, Huitao ;
Li, Sheng ;
Qiu, Jingxia ;
Huo, Fengwei .
SMALL METHODS, 2023, 7 (03)
[44]   Synthesis of Mesoporous Germanium Phosphide Microspheres for High-Performance Lithium-Ion and Sodium-Ion Battery Anodes [J].
Tseng, Kuan-Wei ;
Huang, Sheng-Bor ;
Chang, Wei-Chung ;
Tuan, Hsing-Yu .
CHEMISTRY OF MATERIALS, 2018, 30 (13) :4440-4447
[45]   Engineering aspects of sodium-ion battery: An alternative energy device for Lithium-ion batteries [J].
Wanison, Ramnarong ;
Syahputra, Wahyu Nurkholis Hadi ;
Kammuang-lue, Niti ;
Sakulchangsatjatai, Phrut ;
Chaichana, Chatchawan ;
Shankar, V. Uma ;
Suttakul, Pana ;
Mona, Yuttana .
JOURNAL OF ENERGY STORAGE, 2024, 100
[46]   Antimony-based materials as promising anodes for rechargeable lithium-ion and sodium-ion batteries [J].
He, Jun ;
Wei, Yaqing ;
Zhai, Tianyou ;
Li, Huiqiao .
MATERIALS CHEMISTRY FRONTIERS, 2018, 2 (03) :437-455
[47]   Biomass-Derived Carbon Utilization for Electrochemical Energy Enhancement in Lithium-Ion Batteries [J].
Jeong, Byeong Jin ;
Jiang, Feng ;
Sung, Jae Yoon ;
Jung, Soon Phil ;
Oh, Dae Won ;
Gnanamuthu, RM. ;
Vediappan, Kumaran ;
Lee, Chang Woo .
NANOMATERIALS, 2024, 14 (12)
[48]   Boosting sodium storage performance of biomass-derived porous carbon anodes by surface functionalized strategy [J].
Li, Qun ;
Zhao, Fei ;
Xuan, Xiaoyang ;
Wang, Meiling ;
Sun, Zhonghua ;
Zhang, Yanan ;
Liu, Aiqing .
DIAMOND AND RELATED MATERIALS, 2024, 147
[49]   Nanowires Framework Supported Porous Lotus-Carbon Anode Boosts Lithium-Ion and Sodium-Ion Batteries [J].
Sun, Xiaochen ;
Gao, Xuan ;
Li, Zhuo ;
Zhang, Xin ;
Zhai, Xiaoli ;
Zhang, Qiuxia ;
Li, Liuan ;
Gao, Nan ;
He, Guanjie ;
Li, Hongdong .
SMALL METHODS, 2024, 8 (01)
[50]   Flexible MnS-Carbon Fiber Hybrids for Lithium-Ion and Sodium-Ion Energy Storage [J].
Gao, Shuang ;
Chen, Gang ;
Dall'Agnese, Yohan ;
Wei, Yingjin ;
Gao, Zhongmin ;
Gao, Yu .
CHEMISTRY-A EUROPEAN JOURNAL, 2018, 24 (51) :13535-13539