Conversion of agricultural waste biomass resource into high-added-value composite and its potential for boosting synergistic removal of ammonia nitrogen in practical water

IF 3.5 2区 农林科学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Food and Bioproducts Processing Pub Date : 2025-01-30 DOI:10.1016/j.fbp.2025.01.018
Junjie Yuan , Yao Zhu , Jizhang Wang , Zhigang Liu , Tao Zhang , Pingping Li , Fengxian Qiu
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Abstract

Agricultural production has long attracted attention for its high demand for resources and high damage to the environment. To address the high costs and impacts of nitrogen fertilizer overuse, a new method for treating ammonia nitrogen pollution in agricultural water bodies needs to be established to ensure water source safety and environmental quality, and to sustain agricultural production. This study involved pretreating oilseed rape straw (ORS) to extract waste biomass to functionalize with active inorganic bimetallic layer, which serves as the primary component for adsorbing ammonia nitrogen from both simulated and real wastewater. The hierarchical structure of the Cu-Al bimetallic hydroxide-functionalized waste ORS biomass (Cu-Al@ORS) is characterized by an abundance of nanosheet clusters on its surface, providing a large number of binding sites. Under the optimal conditions (pH 7.0, temperature 25 °C), the maximum removal efficiency towards ammonia nitrogen can reach 54.5 %. According to the adsorption kinetics fitting result, the adsorption of ammonia nitrogen by Cu-Al@ORS conforms well to the pseudo-second order kinetic model with an adsorption capacity of 87.11 mg/g and chemisorption is the rate-determining step in the adsorption process. Furthermore, the Cu-Al@ORS exhibits comparable adsorption stability and regeneration performance in practical applications. The removal efficiency declines to 49.89 % after the fifth cycle, which is significantly lower than the 67.57 % decrease observed in activated carbon. The practical application results suggest the potential of Cu-Al@ORS as a promising, cost-effective, and sustainable alternative to activated carbon for treating wastewater. The study focuses on the conversion of waste agricultural straw into biomass with ammonia nitrogen removal capabilities, offering a theoretical underpinning for the benign treatment, resource utilization, and carbon sequestration and emission reduction of agricultural waste biomass.
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来源期刊
Food and Bioproducts Processing
Food and Bioproducts Processing 工程技术-工程:化工
CiteScore
9.70
自引率
4.30%
发文量
115
审稿时长
24 days
期刊介绍: Official Journal of the European Federation of Chemical Engineering: Part C FBP aims to be the principal international journal for publication of high quality, original papers in the branches of engineering and science dedicated to the safe processing of biological products. It is the only journal to exploit the synergy between biotechnology, bioprocessing and food engineering. Papers showing how research results can be used in engineering design, and accounts of experimental or theoretical research work bringing new perspectives to established principles, highlighting unsolved problems or indicating directions for future research, are particularly welcome. Contributions that deal with new developments in equipment or processes and that can be given quantitative expression are encouraged. The journal is especially interested in papers that extend the boundaries of food and bioproducts processing. The journal has a strong emphasis on the interface between engineering and food or bioproducts. Papers that are not likely to be published are those: • Primarily concerned with food formulation • That use experimental design techniques to obtain response surfaces but gain little insight from them • That are empirical and ignore established mechanistic models, e.g., empirical drying curves • That are primarily concerned about sensory evaluation and colour • Concern the extraction, encapsulation and/or antioxidant activity of a specific biological material without providing insight that could be applied to a similar but different material, • Containing only chemical analyses of biological materials.
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