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Sludge source-redox mediators obtainment and availability for enhancing bioelectrogenesis and acidogenesis: Deciphering characteristics and mechanisms.

Authors :
Xin, Xiaodong
Xie, Jiaqian
Wang, Yanfang
Li, Lin
Li, Wei
Lv, Sihao
Wen, Zhidan
He, Junguo
Xin, Ying
Source :
Water Research. Jun2023, Vol. 236, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

• SSRMs boosted running properties of bioelectrogenesis and acidogenesis effectively. • SSRMs improved the protein and carbohydrate metabolisms-related genes' expression. • SSRMs elevated electron transfer efficiency by up-regulating cytochrome c oxidase. • SSRMs raised microbial diversity to realize superior bioelectrogenesis/acidogenesis. Anaerobic biological treatment was regarded as one of promising options for realizing concurrent WAS reduction, stabilization and bioenergy/bioresource recycle. But the relatively low treatment efficiency limited its spreading application toward larger scale considerably in China. Aimed at such barrier, this study offered a novel enhancing strategy for achieving high-efficiency of bioenergy/bioresource recycle from WAS anaerobic treatment via improving bioelectrogenesis/acidogenesis using sludge source-redox mediators (SSRMs). SSRMs not only facilitated bioeletrogenesis with an increasing efficiency of 36% for voltage output and 39% for bioelectricity bioconversion, but also enhanced acidogenesis of WAS with a mean elevating efficiency of 37.5% of volatile fatty acids (VFAs) production within 5 d Mechanistic investigations indicated that SSRMs had a potential influence on improving the protein and carbohydrate metabolisms-related genes' expression for enhancing bioelectrogenesis and acidogenesis. Moreover, SSRMs exerted roles of electrochemical "catalysts" or as terminal electron acceptors with affecting functional proteins of complexes of Ⅰ and Ⅳ in electron transfer chains for improving electron transfer efficiency. Meanwhile, the core members' abundance, microbial diversity and community distributive evenness were prompted concurrently for carrying out superior bioelectrogenesis and acidogenesis. A schematic illustration was established for demonstrating the mechanism of SSRMs for enhancing bioelectrogenesis and acidogenesis via changing microbial metabolism functions, enhancing electron transfer efficiency, and regulating functional genes' expression of functional proteins (up-regulating cytochrome c oxidase and down-regulating-NADH dehydrogenase). This study provided an effective enhancing strategy for facilitating WAS bioconversion to bioenergy/bioresource with well-process sustainability. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00431354
Volume :
236
Database :
Academic Search Index
Journal :
Water Research
Publication Type :
Academic Journal
Accession number :
163388130
Full Text :
https://doi.org/10.1016/j.watres.2023.119974