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

被引:46
|
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
来源
SUSTAINABLE ENERGY & FUELS | 2018年 / 2卷 / 10期
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
  • [21] All biomass-derived autogenous nitrogen-doped porous carbon with pseudo-graphitic structure for advanced lithium-ion battery anodes
    Wang, Xian
    Yao, Xu
    Sun, Jingwen
    Zhuo, Jinlong
    Tao, Xian-Sen
    Li, Xianhong
    Sha, Jingquan
    JOURNAL OF POWER SOURCES, 2025, 629
  • [22] Preparation and Characterization of Biomass-Derived Advanced Carbon Materials for Lithium-Ion Battery Applications
    Andri Hardiansyah
    Elsy Rahimi Chaldun
    Bebeh Wahid Nuryadin
    Anti Khoerul Fikriyyah
    Achmad Subhan
    Muhammad Ghozali
    Bambang Sunendar Purwasasmita
    Journal of Electronic Materials, 2018, 47 : 4028 - 4037
  • [23] Revealing the Effect of Nanopores in Biomass-Derived Carbon on its Sodium-Ion Storage Behavior
    Wang, Caiwei
    Huang, Jianfeng
    Li, Jiayin
    Cao, Liyun
    Chen, Qian
    Qian, Cheng
    Chen, Shaoyi
    CHEMELECTROCHEM, 2020, 7 (01): : 201 - 211
  • [24] Preparation and Characterization of Biomass-Derived Advanced Carbon Materials for Lithium-Ion Battery Applications
    Hardiansyah, Andri
    Chaldun, Elsy Rahimi
    Nuryadin, Bebeh Wahid
    Fikriyyah, Anti Khoerul
    Subhan, Achmad
    Ghozali, Muhammad
    Purwasasmita, Bambang Sunendar
    JOURNAL OF ELECTRONIC MATERIALS, 2018, 47 (07) : 4028 - 4037
  • [25] Biomass-Derived Porous Carbon from Agar as an Anode Material for Lithium-Ion Batteries
    Issatayev, Nurbolat
    Kalimuldina, Gulnur
    Nurpeissova, Arailym
    Bakenov, Zhumabay
    NANOMATERIALS, 2022, 12 (01)
  • [26] Biomass-Based Silicon and Carbon for Lithium-Ion Battery Anodes
    Pillai, Manoj Muraleedharan
    Kalidas, Nathiya
    Zhao, Xiuyun
    Lehto, Vesa-Pekka
    FRONTIERS IN CHEMISTRY, 2022, 10
  • [27] Lignin-derived carbon nanocomposites as sodium-ion battery anodes
    Jiang, Keren
    Tan, Xuehai
    Li, Zhi
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 258
  • [28] Tailored Carbon Anodes Derived from Biomass for Sodium-Ion Storagel
    Kim, Kyungho
    Lim, Daw Gen
    Han, Chang Wan
    Osswald, Sebastian
    Ortalan, Volkan
    Youngblood, Jeffrey P.
    Pol, Vilas G.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2017, 5 (10): : 8720 - 8728
  • [29] Revisiting Lithium- and Sodium-Ion Storage in Hard Carbon Anodes
    Kim, Hoseong
    Hyun, Jong Chan
    Kim, Do-Hoon
    Kwak, Jin Hwan
    Lee, Jin Bae
    Moon, Joon Ha
    Choi, Jaewon
    Lim, Hee-Dae
    Yang, Seung Jae
    Jin, Hyeong Min
    Ahn, Dong June
    Kang, Kisuk
    Jin, Hyoung-Joon
    Lim, Hyung-Kyu
    Yun, Young Soo
    ADVANCED MATERIALS, 2023, 35 (12)
  • [30] A criterion combined of bulk and surface lithium storage to predict the capacity of porous carbon lithium-ion battery anodes: lithium-ion battery anode capacity prediction
    Shaker, Majid
    Ghazvini, Ali Asghar Sadeghi
    Qureshi, Faisal Raza
    Riahifar, Reza
    CARBON LETTERS, 2021, 31 (05) : 985 - 990