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Updated: May 23, 2025

Synthesis of Platinum-nickel Nanowires and Optimization for Oxygen Reduction Performance
Published on: April 27, 2018
Mechanistic insights into the response of oxygen reducing biocathode to Ni2 +: Microbial activity and electron
Xing Dong1, Xiaoyu Zhou1, Xinyue Tang1
1College of Safety and Environmental Engineering, Shandong University of Science and Technology, Qingdao, Shandong 266590, China.
Abstract:
Heavy metals affect the electrochemical activity of microorganisms in bioelectrochemical systems. However, effects of heavy metals on microbial viability and extracellular electron transfer of oxygen reducing biocathodes remains elusive. This study indicated that the impact of Ni2+ shock was concentration-dependent. At 1 mg L-1, current density and electrochemical performance improved, with the highest live cell proportion (73.2 %). Conversely, higher concentrations (10 and 100 mg L-1) showed negative effects, with increasing cell death and biocathode damage. Functional groups (i.e. carbonyl CO, N-H, C-H, and C-O-C), and proteins, humic acid of LB-EPS were confirmed to bind with Ni2+, preventing the penetration into cells. Increased Ni2+ levels intensified interactions with biofilm functional groups, reducing direct electron transfer between oxygen reducing biofilm and cathode. Ni2+ shock altered the structure and microbial richness of the cathode biofilms, decreasing electron transfer gene abundance (e.g., nikA, sodN) and increasing heavy metal resistance genes (e.g., czcB, TC.HME) at higher Ni2+ concentrations. Molecular docking showed Ni2+ interacted variably with electron transfer enzymes, strongly binding to succinate dehydrogenase and cytochrome bc1 complex, affecting enzyme activity and metabolism. This research enhanced understanding of biofilm response to Ni2+ shock and provided insights for improving performance in heavy metal wastewater.
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