Novel slow-release fertilizer promotes nitrogen circularity while increasing soil organic carbon

Katherine Coyle, Jedidian Adjei, Ehsan Abbasi, Princess Vargas, Lindsey Slaughter, Christian E. Alvarez-Pugliese, Gerardine G. Botte, Matthew G. Siebecker
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Abstract

In the coming decades, humanity will be faced with the challenge of feeding 10 billion people and managing large quantities of solid waste. These issues can be mitigated through the development of sustainable fertilizers derived from electrochemically treated waste activated sludge (EWAS) while promoting a nitrogen circular economy. This study investigates the chemistry of novel fertilizers to determine their soil chemistry dynamics. Untreated waste activated sludge (WAS) and EWAS were applied to agricultural soil and potting mix, and the resulting aqueous samples were analyzed to determine nitrogen, phosphorous, and carbon adsorption and release behaviors. Commercial inorganic and natural fertilizers were utilized for comparison. X-ray absorption near-edge structure (XANES) spectroscopy was performed to characterize phosphorus speciation in the solid phases of the novel fertilizers. Results indicated that EWAS and WAS samples released less total nitrogen into solution than other treatments due to organoclay complexation of biomolecules and differences in the solubility of the nitrogen species. Samples containing EWAS released a higher percentage of organic and total carbon into solution due to the deformation of the structure of the organic matter by the alkaline electrolysis process. The solubility of nitrogen and carbon in the sludge was increased by the electrochemical process. Solid-phase phosphorus in EWAS and WAS was characterized by XANES analysis as struvite, which is a novel finding with important implications for P management from waste-based fertilizers. These experimental findings suggest that fertilizing with EWAS could result in reduced runoff and improved soil health while facilitating domestic fertilizer production.

新型缓释肥料促进氮素循环,增加土壤有机碳
在未来几十年,人类将面临养活100亿人口和管理大量固体废物的挑战。这些问题可以通过开发从经电化学处理的废活性污泥(EWAS)中提取的可持续肥料来缓解,同时促进氮循环经济。本文研究了新型肥料的化学性质,以确定其土壤化学动态。将未经处理的废活性污泥(WAS)和EWAS分别施用于农业土壤和盆栽混合料中,并对得到的水样进行分析,以确定氮、磷和碳的吸附和释放行为。利用商品无机肥料和天然肥料进行比较。利用x射线吸收近边结构(XANES)光谱对新型肥料固相中磷的形态进行了表征。结果表明,与其他处理相比,EWAS和WAS样品释放的总氮较少,这是由于生物分子的有机粘土络合作用和氮种溶解度的差异。由于碱性电解过程中有机物结构的变形,含有EWAS的样品释放出较高比例的有机碳和总碳到溶液中。通过电化学处理提高了氮和碳在污泥中的溶解度。通过XANES分析,EWAS和WAS中的固相磷为鸟粪石,这一新发现对废基肥料的磷管理具有重要意义。这些试验结果表明,施用EWAS可以减少径流,改善土壤健康,同时促进国内肥料生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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