Precursor-Dependent Initial Coulombic Efficiency of Hard Carbon Anodes for Sodium-Ion Batteries: A Comparative Review

碳化 阳极 法拉第效率 商业化 标杆管理 工艺工程 材料科学 碳纤维 纳米技术 瓶颈 过程(计算) 计算机科学 生化工程 选择(遗传算法) 匹配(统计) 多准则决策分析 环境科学 包裹体(矿物) 趋同(经济学)
作者
Xuchen Huang,Zhiyi Wang
出处
期刊:Materials [Multidisciplinary Digital Publishing Institute]
卷期号:19 (10): 2132-2132
标识
DOI:10.3390/ma19102132
摘要

Hard carbon has been widely recognized as the most commercially viable anode material for sodium-ion batteries (SIBs); however, its inherently low initial Coulombic efficiency (ICE), typically 60-90%, remains a critical bottleneck constraining practical full-cell deployment. While extensive research has addressed ICE optimization, existing reviews have predominantly focused on individual precursor types or isolated strategies, lacking a unified cross-precursor comparative framework. This review systematically deconstructs the complete causal continua-from chemical composition through carbonization trajectories and microstructural evolution to ultimate ICE outcomes-across five major precursor categories: biomass, synthetic resins, pitches, coal-based materials, and saccharides. An "SSA-closed pore-defect" three-parameter trade-off framework is proposed to elucidate the microstructural origins of precursor-dependent ICE divergences. Cross-categorical benchmarking reveals that resin-based precursors achieve the highest ICE (95%) through ultra-low specific surface area and extensive closed porosity, pitch-based systems deliver the most consistent ICE distribution (86-91%), and coal-derived carbons are confined to the lowest tier (78-85%). The differentiated efficacy of carbonization conditions and post-treatment strategies across precursor types is critically evaluated, demonstrating that optimal process selection is inextricably linked to precursor taxonomy. Building upon these analyses, a precursor selection decision roadmap targeting three application-specific ICE thresholds is constructed, providing actionable guidance for matching precursor-process combinations to industrial requirements. The comparative framework is grounded in 25 representative studies selected through explicit inclusion criteria (detailed in the Introduction), and its predictive utility is illustrated for emerging precursor candidates beyond the five canonical categories. This cross-precursor perspective offers a systematic reference for accelerating the commercialization of hard carbon anodes in SIBs.
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