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用于钠离子电池的甘蔗渣衍生碳质阳极。

Carbonaceous Anodes Derived from Sugarcane Bagasse for Sodium-Ion Batteries.

作者信息

Rath Purna Chandra, Patra Jagabandhu, Huang Hao-Tzu, Bresser Dominic, Wu Tzi-Yi, Chang Jeng-Kuei

机构信息

Department of Materials Science and Engineering, National Chiao Tung University, 1001 University Road, Hsinchu, 300, Taiwan.

Institute of Materials Science and Engineering, National Central University, 300 Zhongda Road, Taoyuan, 320, Taiwan.

出版信息

ChemSusChem. 2019 May 21;12(10):2302-2309. doi: 10.1002/cssc.201900319. Epub 2019 Apr 12.

DOI:10.1002/cssc.201900319
PMID:30835938
Abstract

To realize the sustainability of Na-ion batteries (NIBs) for large-scale energy storage applications, a resource-abundant and cost-effective anode material is required. In this study, sugarcane bagasse (SB), one of the most abundant types of biowaste, is chosen as the carbon precursor to produce a hard carbon (HC) anode for NIBs. SB has a great balance of cellulose, hemicellulose, and lignin, which prevents full graphitization of the pyrolyzed carbon but ensures a sufficiently ordered carbon structure for Na transport. Compared with HC derived from waste apples, which are pectin-rich and have less cellulose than SB, SB-derived HC (SB-HC) has fewer defects and a lower oxygen content. SB-HC thus has a higher first-cycle sodiation/desodiation coulombic efficiency and better cycling stability. In addition, SB-HC has a unique flake-like morphology, which can shorten the Na diffusion length, and higher electronic conductivity (owing to more sp -hybridized carbon), resulting in superior high-rate charge-discharge performance to apple-derived HC. The effects of pyrolysis temperature on the material characteristics and electrochemical properties, evaluated by using chronopotentiometry, cyclic voltammetry, and electrochemical impedance spectroscopy, are systematically investigated for both kinds of HC.

摘要

为实现钠离子电池(NIBs)在大规模储能应用中的可持续性,需要一种资源丰富且成本效益高的负极材料。在本研究中,甘蔗渣(SB)作为最丰富的生物废弃物类型之一,被选作碳前驱体来制备用于NIBs的硬碳(HC)负极。SB在纤维素、半纤维素和木质素之间具有良好的平衡,这阻止了热解碳的完全石墨化,但确保了足够有序的碳结构以利于钠离子传输。与源自富含果胶且纤维素含量低于SB的废苹果的HC相比,源自SB的HC(SB-HC)具有更少的缺陷和更低的氧含量。因此,SB-HC具有更高的首次循环嵌钠/脱钠库仑效率和更好的循环稳定性。此外,SB-HC具有独特的片状形态,这可以缩短钠离子扩散长度,并且具有更高的电子导电性(由于更多的sp 杂化碳),从而导致其倍率充放电性能优于源自苹果的HC。通过计时电位法、循环伏安法和电化学阻抗谱对两种HC系统地研究了热解温度对材料特性和电化学性能的影响。

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