聚合物辅助解尿微生物诱导碳酸盐沉淀:机制、效率优化和生物胶结应用

IF 10.6 1区 环境科学与生态学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Ling Zheng, Chenxi Hou, Xiaolin Lu
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引用次数: 0

摘要

胶结作用通过物理和化学相互作用将砂/土颗粒结合在一起,形成具有宏观力学特性的复合固体。虽然传统的胶结工艺(如硅酸盐水泥生产、磷酸盐粘合剂合成和石灰煅烧)仍然是能源密集型的,但基于微生物诱导的尿溶碳酸盐沉淀(UMICP)的生物胶结已经成为一种环境可持续的替代方案。这种微生物介导的方法显示出与传统方法相当的工程性能,同时显着减少了碳足迹,将其定位为一种有前途的建筑应用绿色技术。然而,三个关键的挑战阻碍了它的实际实施:(1)胶结效率不理想,(2)颗粒固结不均匀,(3)尿素分解过程中的氨副产物排放。为了解决这些限制,通过聚合物集成对UMICP过程进行战略干预显示出特别的希望。本文系统地研究了聚合物辅助UMICP (P-UMICP)技术,重点研究了三个关键的增强机制:首先,功能性聚合物通过多种功能作用提高微生物矿化效率,即微生物包封提高生存能力,碳酸钙成核位点提供,以及通过纳米级砂浆效应实现晶间键合。其次,聚合物基质可以使微生物均匀分布在胶凝介质中,促进整个处理标本的均匀生物固结。第三,选定的聚合物结构通过离子交换机制展示了铵的吸附能力,有效地减轻了尿素水解过程中氨的挥发。目前P-UMICP的应用涵盖了多个工程领域,包括但不限于裂缝修复、生物砖制造、再生砖骨料利用、土壤稳定和海岸侵蚀保护。微生物胶结与聚合物材料的协同结合克服了纯UMICP系统的固有局限性,为开发下一代可持续建筑材料开辟了新的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polymer-assisted ureolytic microbially induced carbonate precipitation: mechanisms, efficiency optimization, and bio-cementation applications

Cementations bind sand/soil particles via physical and chemical interactions to form composite solids with macroscopic mechanical properties. While conventional cementation processes (e.g., silicate cement production, phosphate adhesive synthesis, and lime calcination) remain energy-intensive, bio-cementation based on ureolytic microbially induced carbonate precipitation (UMICP) has emerged as an environmentally sustainable alternative. This microbial-mediated approach demonstrates comparable engineering performance to traditional methods while significantly reducing carbon footprint, positioning it as a promising green technology for construction applications. Nevertheless, three critical challenges hinder its practical implementation: (1) suboptimal cementation efficiency, (2) uneven particle consolidation, and (3) ammonia byproduct emissions during ureolysis. To address these limitations, strategic intervention in the UMICP process through polymer integration has shown particular promise. This review systematically examines polymer-assisted UMICP (P-UMICP) technology, focusing on three key enhancement mechanisms: First, functional polymers boost microbial mineralization efficacy through multifunctional roles, namely microbial encapsulation for improved survivability, calcium carbonate nucleation site provision, and intercrystalline bonding via nanoscale mortar effects. Second, polymeric matrices enable homogeneous microbial distribution within cementitious media, facilitating uniform bio-consolidation throughout treated specimens. Third, selected polymer architectures demonstrate ammonium adsorption capabilities through ion-exchange mechanisms, effectively mitigating ammonia volatilization during urea hydrolysis. Current applications of P-UMICP span diverse engineering domains, including but not limited to crack repair, bio-brick fabrication, recycled brick aggregates utilization, soil stabilization, and coastal erosion protection. The synergistic combination of microbial cementation with polymeric materials overcomes the inherent limitations of pure UMICP systems and opens new possibilities for developing next-generation sustainable construction materials.

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来源期刊
Reviews in Environmental Science and Bio/Technology
Reviews in Environmental Science and Bio/Technology Environmental Science-Waste Management and Disposal
CiteScore
25.00
自引率
1.40%
发文量
37
审稿时长
4.5 months
期刊介绍: Reviews in Environmental Science and Bio/Technology is a publication that offers easily comprehensible, reliable, and well-rounded perspectives and evaluations in the realm of environmental science and (bio)technology. It disseminates the most recent progressions and timely compilations of groundbreaking scientific discoveries, technological advancements, practical applications, policy developments, and societal concerns encompassing all facets of environmental science and (bio)technology. Furthermore, it tackles broader aspects beyond the natural sciences, incorporating subjects such as education, funding, policy-making, intellectual property, and societal influence.
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