Effect mechanism of phosphorous-containing additives on carbon structure evolution and biochar stability enhancement

IF 13.1 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES Biochar Pub Date : 2024-04-16 DOI:10.1007/s42773-024-00330-5
Haiping Yang, Yamian Yu, Han Zhang, Wanwan Wang, Jinjiao Zhu, Yingquan Chen, Shihong Zhang, Hanping Chen
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Abstract

The regulation of the pyrolysis process is a key step in increasing the carbon sequestration capacity of biochar. The effect of K3PO4 addition on the yield, chemical composition, characteristic functional groups, macromolecular skeleton, graphite crystallites, and stability of biochar was studied in this paper using two-dimensional infrared correlation spectroscopy (2D-PCIS), X-ray photoelectron spectroscopy, Raman spectrum, and other characterization methods combined with thermal/chemical oxidation analysis. It is discovered that adding K3PO4 may effectively minimize the graphitization temperature range and increase biochar's yield, aromaticity, H/C ratio, and proportion of refractory/recalcitrant organic carbon. The 2D-PCIS and Raman analysis revealed that K3PO4 mostly promoted the dehydrogenation and polycondensation process of the aromatic rings in the char precursor, transforming the amorphous carbon structure of biochar into an ordered turbostratic microcrystalline structure. K3PO4 enhanced biochar stability mostly at medium-high temperatures (350 ~ 750℃) by stimulating the transformation of unstable structures of biochar to stable carbon-containing structures or by inhibiting the interaction of its active sites with oxidants through the mineralization process. A 20% phosphorus addition increased biochar's refractory index (R50) by roughly 11%, and it also boosted biochar's oxidation resistance (H2O2 or K2CrO4) efficiency, reducing carbon oxidation loss by up to 7.31%. However, at higher temperatures (> 750 ℃), the doping of phosphorus atoms into the carbon skeleton degraded the biochar structure's stability. The results of this study suggest that using exogenous phosphorus-containing additives is an efficient way to improve the stability of biochar.

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含磷添加剂对碳结构演变和生物炭稳定性增强的影响机制
热解过程的调节是提高生物炭固碳能力的关键步骤。本文采用二维红外相关光谱(2D-PCIS)、X 射线光电子能谱、拉曼光谱等表征方法,结合热化学氧化分析,研究了添加 K3PO4 对生物炭的产率、化学成分、特征官能团、大分子骨架、石墨晶粒和稳定性的影响。研究发现,添加 K3PO4 可以有效地缩小石墨化温度范围,提高生物炭的产率、芳香度、H/C 比和难熔/易溶有机碳的比例。二维 PCIS 和拉曼分析表明,K3PO4 主要促进了炭前驱体中芳香环的脱氢和缩聚过程,使生物炭的无定形碳结构转变为有序的涡晶微晶结构。K3PO4 主要通过刺激生物炭的不稳定结构向稳定的含碳结构转化,或通过矿化过程抑制其活性位点与氧化剂的相互作用,从而提高生物炭在中高温(350 ~ 750℃)下的稳定性。20% 的磷添加量使生物炭的耐火指数(R50)提高了约 11%,还提高了生物炭的抗氧化(H2O2 或 K2CrO4)效率,使碳氧化损失降低了 7.31%。然而,在较高温度(750 ℃)下,磷原子掺入碳骨架会降低生物炭结构的稳定性。研究结果表明,使用外源含磷添加剂是提高生物炭稳定性的有效方法。
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来源期刊
Biochar
Biochar Multiple-
CiteScore
18.60
自引率
10.20%
发文量
61
期刊介绍: Biochar stands as a distinguished academic journal delving into multidisciplinary subjects such as agronomy, environmental science, and materials science. Its pages showcase innovative articles spanning the preparation and processing of biochar, exploring its diverse applications, including but not limited to bioenergy production, biochar-based materials for environmental use, soil enhancement, climate change mitigation, contaminated-environment remediation, water purification, new analytical techniques, life cycle assessment, and crucially, rural and regional development. Biochar publishes various article types, including reviews, original research, rapid reports, commentaries, and perspectives, with the overarching goal of reporting significant research achievements, critical reviews fostering a deeper mechanistic understanding of the science, and facilitating academic exchange to drive scientific and technological development.
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