Knowledge Agora



Similar Articles

Title Technological progress and readiness level of microbial electrosynthesis and electrofermentation for carbon dioxide and organic wastes valorization
ID_Doc 7241
Authors Roy, M; Aryal, N; Zhang, YF; Patil, SA; Pant, D
Title Technological progress and readiness level of microbial electrosynthesis and electrofermentation for carbon dioxide and organic wastes valorization
Year 2022
Published
Abstract In order to achieve a carbon-efficient circular economy, a paradigm shift is required to valorize carbon dioxide (CO2) and organic wastes into value-added products. Among others, microbial electrosynthesis (MES) and electrofermentation (EF) technologies have shown the potential to contribute to the circular carbon economy. Besides carbon conversion, both technologies can be applied to store excess green energy in the form of valuable transportable chemicals. This article sheds light on the current status of MES and EF technologies by covering the most important literature from the last two years. Recent progress on reactor design and process optimization, scale-up attempts, and a summary of ongoing or completed technology-oriented research projects over the recent years are presented. Furthermore, the key challenges and future research perspectives desired to enable the implementation of the MES technology are also discussed.
PDF https://backend.orbit.dtu.dk/ws/files/269863515/Review.pdf

Similar Articles

ID Score Article
8148 Jiang, Y; May, HD; Lu, L; Liang, P; Huang, X; Ren, ZJ Carbon dioxide and organic waste valorization by microbial electrosynthesis and electro-fermentation(2019)
10117 Quraishi, M; Wani, K; Pandit, S; Gupta, PK; Rai, AK; Lahiri, D; Jadhav, DA; Ray, RR; Jung, SP; Thakur, VK; Prasad, R Valorisation of CO2 into Value-Added Products via Microbial Electrosynthesis (MES) and Electro-Fermentation Technology(2021)Fermentation-Basel, 7.0, 4
8024 Bian, B; Bajracharya, S; Xu, JJ; Pant, D; Saikaly, PE Microbial electrosynthesis from CO2: Challenges, opportunities and perspectives in the context of circular bioeconomy(2020)
26548 Wood, JC; Grov, J; Marcellin, E; Heffernan, JK; Hu, SH; Yuan, ZG; Virdis, B Strategies to improve viability of a circular carbon bioeconomy-A techno-economic review of microbial electrosynthesis and gas fermentation(2021)
5335 Deng, SH; Wang, CQ; Ngo, HH; Guo, WS; You, N; Tang, H; Yu, HB; Tang, L; Han, J Comparative review on microbial electrochemical technologies for resource recovery from wastewater towards circular economy and carbon neutrality(2023)
26305 Salar-García, MJ; Ortiz-Martínez, VM; Sánchez-Segado, S; Sánchez, RV; López, AS; Blanco, LJL; Godínez-Seoane, C Sustainable Production of Biofuels and Biochemicals via Electro-Fermentation Technology(2024)Molecules, 29, 4
12910 Lekshmi, GS; Bazaka, K; Ramakrishna, S; Kumaravel, V Microbial electrosynthesis: carbonaceous electrode materials for CO2 conversion(2023)Materials Horizons, 10.0, 2
25074 Modestra, JA; Matsakas, L; Rova, U; Christakopoulos, P Prospects and trends in bioelectrochemical systems: Transitioning from CO2 towards a low-carbon circular bioeconomy(2022)
5532 Pahunang, RR; Buonerba, A; Senatore, V; Oliva, G; Ouda, M; Zarra, T; Muñoz, R; Puig, S; Ballesteros, FC; Li, CW; Hasan, SW; Belgiorno, V; Naddeo, V Advances in technological control of greenhouse gas emissions from wastewater in the context of circular economy(2021)
19755 Koul, Y; Devda, V; Varjani, S; Guo, WS; Ngo, HH; Taherzadeh, MJ; Chang, JS; Wong, JWC; Bilal, M; Kim, SH; Bui, XT; Parra-Saldívar, R Microbial electrolysis: a promising approach for treatment and resource recovery from industrial wastewater(2022)Bioengineered, 13.0, 4
Scroll