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从好氧颗粒污泥中回收结构型胞外聚合物(sEPS):对生物聚合物特性和水凝胶性能的深入了解及其在潜在应用中的价值。

Recovery of structural extracellular polymeric substances (sEPS) from aerobic granular sludge: Insights on biopolymers characterization and hydrogel properties for potential applications.

机构信息

Department of Civil and Environmental Engineering - (DICEA), University of Florence, Florence, Italy.

Department of Chemistry "Ugo Schiff" & CSGI Consortium, University of Florence, Italy.

出版信息

J Environ Manage. 2022 Dec 15;324:116247. doi: 10.1016/j.jenvman.2022.116247. Epub 2022 Sep 26.

Abstract

Nowadays, wastewater treatment plants (WWTPs) are transforming into water resource recovery facilities (WRRFs) where the resource recovery from waste streams is pivotal. Aerobic granular sludge (AGS) is a novel technology applied for wastewater treatment. Extracellular polymeric substances (EPS) secreted by microorganisms promote the aggregation of bacterial cells into AGS and the structural fraction of EPS (sEPS) is responsible for the mechanical properties of AGS. sEPS can be extracted and recovered from waste AGS by physico-chemical methods and its characterization is to date of relevant concern to understand the properties in the perspective of potential applications. This study reports on: characterization of sEPS extracted and recovered from AGS; - formation and characterization of sEPS-based hydrogels. Briefly, sEPS were extracted by a thermo-alkaline process followed by an acidic precipitation. sEPS-based hydrogels were formed by a cross-linking process with a 2.5% w/w CaCl solution. The following key-findings can be drawn: i) hydrogels can be formed starting from 1% w/w sEPS on, by diffusion of Ca into sEPS network; ii) the Ca/C molar ratio of hydrogels decreased with increasing concentration of sEPS from 1 to 10% w/w; iii) the thermogravimetric and spectroscopic behaviours of sEPS show that the cross-linking reaction mainly involves the polysaccharidic fraction of biopolymers; iv) water-holding capacity up to 99 gHO/g was registered for 1% w/w sEPS-based hydrogels, suggesting applications in several industrial sectors (i.e. chemical, paper, textile, agronomic, etc.); v) rheological results highlighted a solid-like behaviour (G'≫G") of sEPS-based hydrogels. The power-law fitting of G' vs. sEPS concentration suggests that the expansion of the sEPS network during cross-linking occurs through a percolative mechanism involving the initial formation of sEPS oligomers clusters followed by their interconnection towards the formation of 3D network. These findings provide additional information about the mechanisms of sEPS-based hydrogel formation and reveal the peculiar physico-chemical characteristics of sEPS which nowadays are increasingly gaining interest in the context of resource recovery.

摘要

如今,废水处理厂(WWTP)正在向水资源回收设施(WRRF)转变,从废物流中回收资源至关重要。好氧颗粒污泥(AGS)是一种应用于废水处理的新技术。微生物分泌的胞外聚合物(EPS)促进了细菌细胞聚集到 AGS 中,并且 EPS 的结构部分(sEPS)负责 AGS 的机械性能。sEPS 可以通过物理化学方法从废 AGS 中提取和回收,其特性是目前关注的焦点,从潜在应用的角度了解其性质。本研究报告:sEPS 的特性提取和从 AGS 中回收; - sEPS 基水凝胶的形成和特性。简要地说,sEPS 是通过热碱性过程提取的,然后通过酸性沉淀进行回收。sEPS 基水凝胶是通过用 2.5%w/w CaCl 溶液交联过程形成的。可以得出以下主要结论:i)可以从 1%w/w sEPS 开始形成水凝胶,通过 Ca 扩散到 sEPS 网络中;ii)随着 sEPS 浓度从 1%w/w 增加到 10%w/w,水凝胶的 Ca/C 摩尔比降低;iii)sEPS 的热重和光谱行为表明,交联反应主要涉及生物聚合物的多糖部分;iv)对于 1%w/w sEPS 基水凝胶,吸水率高达 99 gHO/g,这表明在几个工业部门(即化学、造纸、纺织、农业等)中的应用;v)流变学结果突出了 sEPS 基水凝胶的固态行为(G'≫G")。G'与 sEPS 浓度的幂律拟合表明,交联过程中 sEPS 网络的膨胀是通过涉及 sEPS 低聚物簇初始形成的渗透机制发生的,随后通过它们的相互连接形成 3D 网络。这些发现提供了有关 sEPS 基水凝胶形成机制的更多信息,并揭示了 sEPS 的特殊物理化学特性,这些特性在资源回收方面越来越受到关注。

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