MICROBIAL FUEL CELL BERBASIS YEAST Saccharomyces cerevisiae

Author(s):  
Ummy Mardiana
2021 ◽  
Author(s):  
Akansha Shrivastava ◽  
Mamta Pal ◽  
Rakesh Kumar Sharma

Abstract Production of bioethanol and bioelectricity is a promising approach through microbial electrochemical technology. Sugars are metabolized by yeast to produces ethanol, CO2 and energy. Surplus electrons produced during the fermentation can be transferred through the circuit to generate electricity in a Microbial fuel cell (MFC). In the present study, a membrane less single chambered microbial fuel cell was developed for simultaneous production of bioethanol and bioelectricity. Pichia fermentans along with a well-known ethanol producing yeast Saccharomyces cerevisiae was allowed to ferment glucose. S. cerevisiae demonstrated maximum open circuit voltage (OCV) 0.287 ± 0.009 V and power density 4.473 mW m− 2 on 15th day, with a maximum ethanol yield of 5.6% (v/v) on 12th day. P. fermentans demonstrated a maximum OCV of 0.318 ± 0.0039 V and power density of 8.299 mW m− 2 on 15th day with ethanol yield of 4.7 % (v/v) on 12th day. Coulombic efficiency (CE) increased gradually from 0.002–0.471 % and 0.012–0.089 % in the case of S. cerevisiae and P. fermentans, respectively, during 15 days of experiment. Thus, the result indicated that Single chambered fuel cell can be explored for its potential applications for ethanol production along with clean energy generation.


2012 ◽  
Vol 50 (4) ◽  
pp. 575-580 ◽  
Author(s):  
Mostafa Rahimnejad ◽  
Ghasem Darzi Najafpour ◽  
Ali Asghar Ghoreyshi ◽  
Farid Talebnia ◽  
Giuliano C. Premier ◽  
...  

2016 ◽  
Vol 18 (2) ◽  
pp. 131
Author(s):  
Muhammad Amal Nurhakim ◽  
Endang Kusdiyantini ◽  
Budi Raharjo

The increases of human growth causes electrical energy demand’s expantion while the supply decreases drastically. Energy crisis had triggeredalternative renewable energy sourcesdevelopmentto substitutethe use ofoil that had beenmain energy resources for the people. Microorganisms utilization is used to produce electrical by researchers these years as an effort to actualize the goals. The system used is microbial fuel cell (MFC) technology which utilize metabolism activity from microorganisms to produce electrical energy. Microorganismswill perform metabolism bybreaking down glucose into hydrogen (H2) and oxygen (O2).Hydrogen has a role as raw material that used in reduction reaction with oxygen until it releases electron in anoda as electrical flows source. Saccharomyces cerevisiae is an example microorganisms that can utilize for produce electrical energy. This research aims to  find optimal concentration for glucose as a carbon source in microbial fuel cell Saccharomyces cerevisiaeto form electrical energy. This research use S. cerevisiae as microorganisms and variation of glucose concentration as a carbon source. Parameters measured in this study is the voltage (mV) and current (mA). Research’s result shows that glucose in 10 % (w/v) concentrate forms higher results in voltage (mV) and current (mA) compare to glucose with 20% (w/v) concentrate and in the concentrate of 30% (w/v) which values each 561,833 mV and 105,133 mA. Analysis of variance with level of confidence 95% shows glucose concentrates don’t react significantly voltage but react significantly on current. Tukey HSD’s test show significant different between current that was formed by glucose in the concentrate of 10% (w/v) compared to glucose in the concentrate of 20% (w/v) and 30% (w/v).Keywords : Saccharomyces cerevisiae, microbial fuel cell (MFC), glucose, electrical energy


2018 ◽  
Vol 128 ◽  
pp. 324-329
Author(s):  
Anna Trusek ◽  
Lukasz Janczewski ◽  
Michal Halon

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