Molecular understanding of speciation transformation of phosphorus and sulfur in food waste digestate during hydrothermal treatment

IF 7.1 2区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Waste management Pub Date : 2024-09-13 DOI:10.1016/j.wasman.2024.09.003
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Abstract

Recovering phosphorus (P) and sulfur (S) from biowaste is a key strategy to address the current P resources shortage and soil S deficiency. Food waste digestate (FWD) contains high contents of P and S, while its direct application is severely limited by available nutrient leaching loss and pollutant exposure. Hydrothermal treatment (HT) is an effective technique for biowaste disposal, enabling detoxification and resource recovery. The study systematically investigated the speciation transformation of P and S in FWD during HT, using chemical extraction and in-situ X-ray absorption near-edge structure (XANES) spectroscopy. The results revealed that up to 98% of P in FWD was enriched in the solid product (hydrochar) after HT, with organic P and labile P being converted into stable Ca-bound forms, predominantly hydroxyapatite. This transformation reduced the risk of P leakage loss compared to untreated FWD. Interestingly, the S speciation evolution exhibited more complexity. The highest S proportion in hydrochar of 73.6% was observed at 140 °C under HT. As the temperature increased from 140 °C to 180 °C, S in the hydrochar gradually dissolved into the liquid phase, attributed to unstable aliphatic compounds (mercaptan) and the sulfides oxidizing to sulfates. Above 180 °C, intermediate oxidation states and sulfates were reduced and formed metal sulfides. These findings have important implications for understanding the viability of HT for FWD disposal and the value-added utilization of FWD.

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对水热处理过程中厨余消化物中磷和硫的物种转化的分子认识
从生物废弃物中回收磷(P)和硫(S)是解决当前磷资源短缺和土壤缺硫问题的关键策略。食物垃圾沼渣(FWD)含有较高的磷和硫,但其直接应用却受到可用养分沥滤损失和污染物暴露的严重限制。水热处理(HT)是一种有效的生物垃圾处理技术,可实现解毒和资源回收。本研究采用化学萃取和原位 X 射线吸收近边结构(XANES)光谱法,系统地研究了高温热处理过程中 FWD 中 P 和 S 的物种转化。结果表明,高温热解后,FWD 中高达 98% 的 P 富集在固体产物(水炭)中,有机 P 和易溶 P 转化为稳定的 Ca 结合形式,主要是羟基磷灰石。与未经处理的 FWD 相比,这种转化降低了 P 流失的风险。有趣的是,S 的种类演变表现出更大的复杂性。在高温条件下,140 °C时水炭中的S比例最高,为73.6%。随着温度从 140 °C 升至 180 °C,水碳中的 S 逐渐溶解到液相中,这归因于不稳定的脂肪族化合物(硫醇)和硫化物氧化成硫酸盐。在 180 °C 以上,中间氧化态和硫酸盐被还原,形成金属硫化物。这些发现对于了解高温催化分解技术在处理可再生资源方面的可行性以及可再生资源的增值利用具有重要意义。
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来源期刊
Waste management
Waste management 环境科学-工程:环境
CiteScore
15.60
自引率
6.20%
发文量
492
审稿时长
39 days
期刊介绍: Waste Management is devoted to the presentation and discussion of information on solid wastes,it covers the entire lifecycle of solid. wastes. Scope: Addresses solid wastes in both industrialized and economically developing countries Covers various types of solid wastes, including: Municipal (e.g., residential, institutional, commercial, light industrial) Agricultural Special (e.g., C and D, healthcare, household hazardous wastes, sewage sludge)
期刊最新文献
Kinetic investigation on the catalytic pyrolysis of plastic fractions of waste electrical and electronic equipment (WEEE): A mathematical deconvolution approach. Lightweight deep learning model for underwater waste segmentation based on sonar images Molecular understanding of speciation transformation of phosphorus and sulfur in food waste digestate during hydrothermal treatment Corrigendum to “Spillover of different regulatory policies for waste sorting: Potential influence on energy-saving policy acceptability” [Waste Manag. 125 (2021) 112–121] Editorial Board
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