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仿生水凝胶复合材料在土壤稳定和污染物治理中的应用。

Biomimetic Hydrogel Composites for Soil Stabilization and Contaminant Mitigation.

机构信息

School for Engineering of Matter, Transport and Energy, Arizona State University , 781 E Terrace Rd, Tempe, Arizona 85287, United States.

The Center for Bio-inspired and Bio-mediated Geotechnics, Arizona State University , P.O. Box 873005, Tempe, Arizona 85287-3005, United States.

出版信息

Environ Sci Technol. 2016 Nov 15;50(22):12401-12410. doi: 10.1021/acs.est.6b01285. Epub 2016 Nov 3.

Abstract

We have developed a novel method to synthesize a hyper-branched biomimetic hydrogel network across a soil matrix to improve the mechanical strength of the loose soil and simultaneously mitigate potential contamination due to excessive ammonium. This method successfully yielded a hierarchical structure that possesses the water retention, ion absorption, and soil aggregation capabilities of plant root systems in a chemically controllable manner. Inspired by the robust organic-inorganic composites found in many living organisms, we have combined this hydrogel network with a calcite biomineralization process to stabilize soil. Our experiments demonstrate that poly(acrylic acid) (PAA) can work synergistically with enzyme-induced carbonate precipitation (EICP) to render a versatile, high-performance soil stabilization method. PAA-enhanced EICP provides multiple benefits including lengthening of water supply time, localization of cementation reactions, reduction of harmful byproduct ammonium, and achievement of ultrahigh soil strength. Soil crusts we have obtained can sustain up to 4.8 × 10 kPa pressure, a level comparable to cementitious materials. An ammonium removal rate of 96% has also been achieved. These results demonstrate the potential for hydrogel-assisted EICP to provide effective soil improvement and ammonium mitigation for wind erosion control and other applications.

摘要

我们开发了一种新的方法,在土壤基质中合成超支化仿生水凝胶网络,以提高疏松土壤的机械强度,同时减轻由于过量铵引起的潜在污染。该方法成功地产生了一种分级结构,以化学可控的方式具有植物根系的保水、离子吸收和土壤团聚能力。受许多生物中存在的坚固的有机-无机复合材料的启发,我们将这种水凝胶网络与方解石生物矿化过程结合起来稳定土壤。我们的实验表明,聚丙烯酸(PAA)可以与酶诱导的碳酸盐水化反应(EICP)协同作用,提供一种多功能、高性能的土壤稳定方法。PAA 增强的 EICP 具有多种益处,包括延长供水时间、胶结反应的本地化、减少有害副产物铵以及实现超高土壤强度。我们获得的土壤壳可以承受高达 4.8×10kPa 的压力,与水泥基材料相当。还实现了 96%的铵去除率。这些结果表明,水凝胶辅助 EICP 有可能为防风蚀控制和其他应用提供有效的土壤改良和铵缓解。

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