球磨量身定制的玉米秸秆生物炭:从物理到化学吸附优势的戏剧性转变,增强了源分离尿液中氨氮的去除

IF 6.2 1区 农林科学 Q1 AGRICULTURAL ENGINEERING
Borui Quan, Daocai Chi, Guimin Xia, Xiaolong Liu, Wei Chen, Qi Wu
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引用次数: 0

摘要

增强碳化秸秆孔上的官能团可以促进吸附,但机理有待研究。本研究采用玉米秸秆热解(500℃)制得生物炭(B),制备表面含有丰富含o官能团的球磨生物炭(BMB)。批量测试测定了合成尿中NH₄+-N的吸附量(含0.5 mol/L NH4+-N)。综合表征(SEM/XPS/EPR)和吸附模型揭示了表面官能团、•OH自由基和氧空位在增强化学吸附中的作用。结果表明,球磨可显著增加表面含氧官能团(-OH、-COOH)、羟基自由基和氧空位,从而增加化学吸附位点。动力学研究和微观表征共同表明,球磨后生物炭的主要吸附机制已经从物理吸附(B)转变为孔隙扩散的化学吸附(BMB)。对NH4+-N的吸附量提高了28 %(从32 mg/g提高到41 mg/g)。这些结果证实了球磨技术有效克服了传统秸秆生物炭的物理吸附局限性,提高了其平衡吸附能力。富氧BMB为从尿液废水中回收氮提供了一种高效、低成本的解决方案,为农业废弃物的可持续利用和分散式卫生管理提供了关键的技术支持。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Ball-milling tailored corn straw biochar: A dramatic shift from physical to chemical adsorption dominance for enhanced ammonia nitrogen removal in source-separated urine

Ball-milling tailored corn straw biochar: A dramatic shift from physical to chemical adsorption dominance for enhanced ammonia nitrogen removal in source-separated urine
Enhancing the functional groups on carbonized straw pores can boost adsorption, though mechanisms need study. This study used corn straw pyrolysis (500 °C) to produce biochar (B), and prepared ball milled biochar (BMB) with abundant O-containing functional groups on the surface. Batch tests measured NH₄⁺-N adsorption from synthetic urine (containing 0.5 mol/L NH4+-N). Combined characterization (SEM/XPS/EPR) and adsorption models revealed surface functionalities, •OH radicals, and oxygen vacancies roles in enhanced chemisorption. Results show that ball milling significantly increased surface oxygen-containing functional groups (such as -OH, -COOH), hydroxyl radicals, and oxygen vacancies, thereby enhancing chemical adsorption sites. Dynamics studies and microscopic characterization jointly indicate that the dominant adsorption mechanism of biochar after ball milling has shifted from physical adsorption (B) to chemical adsorption (BMB) with pore diffusion. The adsorption capacity of NH4+-N increased by 28 % (from 32 mg/g to 41 mg/g). These results confirm that ball milling technology effectively overcomes the physical adsorption limitations of traditional straw biochar and improves its equilibrium adsorption capacity. Oxygen-rich BMB provides an efficient and low-cost solution for nitrogen recovery from urine wastewater, providing critical technical support for sustainable agricultural waste utilization and decentralized sanitation management.
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来源期刊
Industrial Crops and Products
Industrial Crops and Products 农林科学-农业工程
CiteScore
9.50
自引率
8.50%
发文量
1518
审稿时长
43 days
期刊介绍: Industrial Crops and Products is an International Journal publishing academic and industrial research on industrial (defined as non-food/non-feed) crops and products. Papers concern both crop-oriented and bio-based materials from crops-oriented research, and should be of interest to an international audience, hypothesis driven, and where comparisons are made statistics performed.
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