Coaxial microbial electrolysis cell for cost‐effective bioenergy production and wastewater treatment of potato industry effluent

Author:

Muddasar Muhammad12ORCID,Liaquat Rabia1ORCID,Rahman Muhammad Zia Ur3,Khoja Asif Hussain4ORCID,Aslam Ayesha1,Basit Abdul5

Affiliation:

1. Energy Systems Engineering Department, US–Pakistan Center for Advanced Studies in Energy (USPCAS‐E) National University of Sciences and Technology (NUST) Islamabad Pakistan

2. Stokes Laboratories and Bernal Institute, School of Engineering University of Limerick Limerick Ireland

3. Department of Mechanical, Mechatronics, and Manufacturing Engineering University of Engineering and Technology (UET) Lahore Faisalabad Pakistan

4. Thermal Energy Systems Engineering Department, US–Pakistan Center for Advanced Studies in Energy (USPCAS‐E) National University of Sciences and Technology (NUST) Islamabad Pakistan

5. Department of Physiology Government College University Faisalabad Pakistan

Abstract

AbstractBACKGROUNDThe increase in energy and water demand due to industrialization and urbanization requires prioritized solutions for a sustainable future. Microbial electrolysis cells (MECs) have shown huge potential for biohydrogen production along with wastewater treatment. This study examined the effectiveness of employing nickel foam as an anode material for biohydrogen production from the widely available potato industry effluent.RESULTSHydrogen production rate increases exponentially with the increase in applied voltage. A maximum hydrogen production rate of 0.69 ± 0.02 m3 H2 m−3 reactor volume d−1 was achieved at 0.9 V with a maximum chemical oxygen demand removal efficiency of 97% at 0.8 V. The effluent of the 0.8 V cycle had the least salinity, low total dissolved solids, 84% reduced total hardness, highest effluent clarity (4.30 NTU, and negligible quantity of heavy metals.CONCLUSIONThis study successfully produced biohydrogen from potato wastewater within 5 days of operation along with wastewater treatment of the substrate. The improved performance of the system can be attributed to the unique characteristics of nickel foam, such as high porosity, large surface area and excellent conductivity. The findings of this study have implications for the sustainable treatment of domestic and agro‐industrial wastewater and the development of efficient and low‐cost bio‐electrochemical systems for renewable energy production. © 2023 Society of Chemical Industry (SCI).

Publisher

Wiley

Subject

Inorganic Chemistry,Organic Chemistry,Pollution,Waste Management and Disposal,Fuel Technology,Renewable Energy, Sustainability and the Environment,General Chemical Engineering,Biotechnology

Reference71 articles.

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