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Published on: December 4, 2017
Differential contributions of iron-based nanoparticles to dark fermentative biohydrogen production: Towards a
Geng Luo1, Mei-Yi Bao2, Jie Ding1
1National Engineering Research Center for Safe Disposal and Resources Recovery of Sludge, Harbin Institute of Technology, Harbin 150090, China; State Key Laboratory of Urban-rural Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin 150090, China.
Abstract:
Iron-based nanoparticles can effectively enhance biohydrogen production (BHP) from dark fermentation (DF) process. In this study, the differential physicochemical-biochemical coupling enhancement effects of iron-based nanoparticles was investigated. nZVI effectively boosted the BHP yield to 1.79 mol H2/mol substrate (0.82-1.25 mol H2/mol substrate without nanoparticles) with in-situ construction of an electron-transfer network via Fe2+ release and transformation into Fe3O4/γ-FeOOH. γ-Fe2O3 primarily enhanced the maximum BHP rate (Rm) by 86% to 132% through partial reduction and moderate electron donation, whereas stable Fe3O4 mainly shortened the lag phase (λ) by 41.68% via conductivity. nZVI enriched Clostridium from 27.64% to 58.65% while suppressing Limosilactobacillus from 52.14% to 3.08%. However, γ-Fe2O3 and Fe3O4 selectively stimulating non-dominant hydrogen-producing bacteria, with a less pronounced inhibitory effect on Limosilactobacillus (37.82% and 49.95%, respectively). These findings provide a mechanistic basis for the targeted selection of nanoparticles based on the differential contributions to BHP kinetics and microbial structure during DF.
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