Department of Environmental Science, Zhejiang University , Hangzhou 310058, China.
Environ Sci Technol. 2014 Aug 19;48(16):9103-12. doi: 10.1021/es405647e. Epub 2014 Jul 24.
Few studies have investigated the effects of structural heterogeneity (particularly the interactions of silicon and carbon) on the mechanisms for the recalcitrance of biochar. In this study, the molecular mechanisms for the recalcitrance of biochars derived from rice straw at 300, 500, and 700 °C (named RS300, RS500, and RS700, respectively) were elucidated. Short-term (24 h) and long-term (240 h) oxidation kinetics experiments were conducted under different concentrations of H2O2 to distinguish the stable carbon pools in the biochars. We discovered that the stabilities of the biochars were influenced not only by their aromaticity but also through possible protection by silicon encapsulation, which is regulated by pyrolysis temperatures. The aromatic components and recalcitrance of the biochars increased with increasing pyrolysis temperatures. The morphologies of the carbon forms in all of the biochars were also greatly associated with those of silica. Silica-encapsulation protection only occurred for RS500, not for RS300 and RS700. In RS300, carbon and silica were both amorphous, and they were easily decomposed by H2O2. The separation of crystalline silica from condensed aromatic carbon in RS700 eliminated the protective role of silicon on carbon. The effect of the biochar particle size on the stability of the biochar was greatly influenced by C-Si interactions and by the oxidation intensities. A novel silicon-and-carbon-coupled framework model was proposed to guide biochar carbon sequestration.
鲜有研究调查结构异质性(尤其是硅与碳的相互作用)对生物炭稳定性机制的影响。本研究旨在阐明由水稻秸秆在 300、500 和 700°C 下热解得到的生物炭(分别命名为 RS300、RS500 和 RS700)的稳定性机制。通过短期(24 h)和长期(240 h)的双氧水氧化动力学实验,以区分生物炭中稳定的碳库。研究发现,生物炭的稳定性不仅受芳香性影响,还可能受到硅封装的保护,而硅封装则受热解温度的调控。生物炭的芳香成分和稳定性随着热解温度的升高而增加。所有生物炭中碳形态的形态也与二氧化硅的形态密切相关。只有 RS500 发生了硅封装保护,而 RS300 和 RS700 则没有。在 RS300 中,碳和硅都是无定形的,很容易被双氧水分解。在 RS700 中,结晶二氧化硅与凝聚芳香碳的分离消除了硅对碳的保护作用。生物炭粒径对生物炭稳定性的影响很大程度上受到 C-Si 相互作用和氧化强度的影响。提出了一种新型的硅-碳偶联框架模型,以指导生物炭碳封存。