生物炭
热解
生化工程
碳化
木质纤维素生物量
生物量(生态学)
左旋葡糖
材料科学
化学
计算化学
有机化学
木质素
吸附
海洋学
气溶胶
生物质燃烧
工程类
地质学
作者
Valentina Sierra-Jiménez,Jonathan P. Mathews,Farid Chejne,Anthony Dufour,Manuel García‐Pérez
出处
期刊:Energy & Fuels
[American Chemical Society]
日期:2023-11-13
卷期号:37 (23): 18408-18440
被引量:7
标识
DOI:10.1021/acs.energyfuels.3c02901
摘要
This paper explores the utility of large-scale atomistic models to examine the complex relationship between biochar behavior, its structural characteristics, and the reactions involved in its formation. Pyrolysis kinetic models primarily focus on explaining the formation of small volatiles and aromatic structures without fully understanding the carbonization process. To gain a deeper understanding of carbonization and move beyond unrealistic structures resembling levoglucosan, it is necessary to examine the transformation of the lignocellulosic macromolecules into carbonaceous structures from a molecular-level perspective. This includes exploring structural transitions and large-scale reactive dynamics. Furthermore, incorporating atomistic representations derived from experimental data and theoretical modeling can help overcome the limitations of relying solely on empirical and density functional theory approaches due to the need for scale to capture biochar properties. Additionally, by considering structural transitions on a large scale, we can effectively capture the complexity of biomass pyrolysis, the interaction of free radicals, and the pore size distribution, all essential for comprehending biochar reactivity and utility.
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