Insights into the electrochemical properties of bagasse-derived hard carbon anode materials for sodium-ion battery

被引:0
作者
Bharat Verma
Hari Raj
Harsha Rajput
Anjan Sil
机构
[1] Indian Institute of Technology Roorkee,Department of Metallurgical and Materials Engineering
[2] Laboratoire de Cristallographie et Sciences des Matériaux,Center for Sustainable Energy
[3] ENSICAEN,undefined
[4] CNRS,undefined
[5] Indian Institute of Technology Roorkee,undefined
来源
Ionics | 2023年 / 29卷
关键词
Graphitization; Hard carbon; Pyrolysis; Electrochemical analysis;
D O I
暂无
中图分类号
学科分类号
摘要
Bio-derived Hard Carbon is a proven negative electrode material for sodium ion battery (SIB). In the present study, we report synthesis of carbonaceous anode material for SIBs by pyrolyzing sugarcane bagasse, an abundant biowaste. Sugarcane bagasse contains carbon-rich compounds e.g., hemicellulose, lignin and cellulose which prevent graphitization of carbon on pyrolysis. The prepared material is highly disordered, porous with flake-like structures and has enhanced interplanar spacing which facilitate the faster Na ion transport and enhanced sodium storage as evidenced by the excellent electrochemical characteristics of the hard carbon pyrolyzed at 900 °C (SW 900) showing highest 2nd cycle discharge capacity of 300 mAhg−1 at 25 mAg−1. Even after subjecting the SW 900 for 300 cycling at 100 mAg−1, the capacity of over 65% is found. This confirms sugarcane waste as a suitable hard carbon anode material for SIB application. The sodium storage mechanism of the hard carbon contributing to the slope and the plateau capacity has been studied in detail.
引用
收藏
页码:5205 / 5216
页数:11
相关论文
共 144 条
[1]  
Ajmal S(2023)MXenes and their interfaces for the taming of carbon dioxide & nitrate: a critical review Coord Chem Rev 483 215094-18230
[2]  
Kumar A(2022)Tailoring of electrocatalyst interactions at interfacial level to benchmark the oxygen reduction reaction Coord Chem Rev 469 214669-2325
[3]  
Selvaraj M(2021)Defective/graphitic synergy in a heteroatom-interlinked-triggered metal-free electrocatalyst for high-performance rechargeable zinc–air batteries J Mater Chem A Mater 9 18222-13776
[4]  
Yasin G(2023)Simultaneously engineering the synergistic-effects and coordination-environment of dual-single-atomic iron/cobalt-sites as a bifunctional oxygen electrocatalyst for rechargeable zinc-air batteries ACS Catal 13 2313-678
[5]  
Ibrahim S(2020)High-voltage and ultrastable aqueous zinc–iodine battery enabled by n-doped carbon materials: revealing the contributions of nitrogen configurations ACS Sustain Chem Eng 8 13769-517
[6]  
Ajmal S(2020)Understanding and suppression strategies toward stable Li metal anode for safe lithium batteries Energy Stor Mater 25 644-935
[7]  
Yasin G(2018)Sodium-ion batteries: from academic research to practical commercialization Adv Energy Mater 8 1701428-3613
[8]  
Ibrahim S(2012)P2-type Nax[Fe1/2Mn1/2]O2 made from earth-abundant elements for rechargeable Na batteries Nat Mater 11 512-1176
[9]  
Ibraheem S(2011)Electrical energy storage for the grid: a battery of choices Science 334 928-1069
[10]  
Yasin G(2011)Electrochemical energy storage for green grid Chem Rev 111 3577-410