A novel chitosan/biochar-modified eco-concrete with balanced mechanical, planting, and water purification performance for riparian restoration

IF 9.7 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL Journal of Cleaner Production Pub Date : 2024-11-04 DOI:10.1016/j.jclepro.2024.144144
Fanrun Huang, Shengxiang Rong, Shiqiang Tao, Hongqiang Chu, Huajie Huang, Shuaixiao Gao, Xin Zhang, Xinyan Xiong, Chi Zhang
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Abstract

The blocking between terrestrial and riverine ecosystems by impermeable concrete can cause negative impacts on plant growth, water quality, and biodiversity in riparian zones. Herein, pursuing a balance among mechanical, planting, and water purification property, chitosan/biochar-modified eco-concrete (CBEC) was prepared as a new sustainable alternative for riparian protection, ecological restoration and water quality improvement. Compressive strength of CBEC with an optimized chitosan/biochar content of 6% could reach up to 14.05 MPa, meeting the requirements for stabilizing riparian slopes. Micromorphology characterization and porosity measurement (29.63%) confirmed the abundantly porous structure of CBEC, facilitating the soil-water nutrient exchange, plant growth and microbial attachment. The 30-d water tank cultivation observed that the physiological parameters of T. orientalis planted in CBEC, including biomass, chlorophyll, protein and starch, were greatly improved compared to unmodified eco-concrete (EC). Moreover, compared to EC, biochar-modified EC and chitosan-modified EC, the planting CBEC could most effectively decrease the levels of TN, NH4+-N, TP, and COD by 53.82%, 62.50%, 88.31%, and 57.95%, respectively. Specially, the planting CBEC could degrade a common but recalcitrant pesticide nitenpyram (NTP) by 32.83% into low-toxic substances, recognized by LC-MS analysis. Microbiological analysis revealed that CBEC greatly promoted the proliferation of both nutrient-transforming bacteria (e.g., Nitrospira and Pseudomonas) and some specific species dominating NTP degradation (e.g., Rhodococcus and Bacillus). Also, PICRUSt2 prediction results identified the enrichment of functional genes related to nitrogen and phosphorus transformation. Our findings can not only develop a superior multi-performance eco-concrete material but also provide a promising strategy for sustainable riparian restoration.

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一种新型壳聚糖/生物炭改性生态混凝土,具有均衡的机械、种植和水净化性能,可用于河岸修复
不透水混凝土阻隔了陆地和河流生态系统,会对河岸地区的植物生长、水质和生物多样性造成负面影响。在此,为了寻求力学、种植和水净化性能之间的平衡,制备了壳聚糖/生物炭改性生态混凝土(CBEC),作为河岸保护、生态恢复和水质改善的新型可持续替代材料。优化壳聚糖/生物炭含量为 6% 的 CBEC 抗压强度可达 14.05 兆帕,满足了稳定河岸斜坡的要求。微形貌表征和孔隙率测量(29.63%)证实了 CBEC 具有丰富的多孔结构,有利于土壤水养分交换、植物生长和微生物附着。通过 30 天的水槽栽培观察发现,与未改良的生态混凝土(EC)相比,种植在 CBEC 中的东方蓟马的生物量、叶绿素、蛋白质和淀粉等生理指标均有显著提高。此外,与 EC、生物炭改性 EC 和壳聚糖改性 EC 相比,种植 CBEC 能最有效地降低 TN、NH4+-N、TP 和 COD 水平,降幅分别为 53.82%、62.50%、88.31% 和 57.95%。特别是,经 LC-MS 分析,种植的 CBEC 可将常见但难降解的农药硝虫酰胺(NTP)降解为低毒物质,降解率达 32.83%。微生物学分析表明,CBEC 极大地促进了营养转化菌(如硝化细菌和假单胞菌)和一些主导 NTP 降解的特定菌种(如罗氏球菌和芽孢杆菌)的增殖。此外,PICRUSt2 预测结果还发现了与氮磷转化相关的功能基因的富集。我们的研究结果不仅能开发出一种性能优越的多功能生态混凝土材料,还能为河岸的可持续修复提供一种前景广阔的策略。
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来源期刊
Journal of Cleaner Production
Journal of Cleaner Production 环境科学-工程:环境
CiteScore
20.40
自引率
9.00%
发文量
4720
审稿时长
111 days
期刊介绍: The Journal of Cleaner Production is an international, transdisciplinary journal that addresses and discusses theoretical and practical Cleaner Production, Environmental, and Sustainability issues. It aims to help societies become more sustainable by focusing on the concept of 'Cleaner Production', which aims at preventing waste production and increasing efficiencies in energy, water, resources, and human capital use. The journal serves as a platform for corporations, governments, education institutions, regions, and societies to engage in discussions and research related to Cleaner Production, environmental, and sustainability practices.
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