• 제목/요약/키워드: Biological electricity

검색결과 45건 처리시간 0.028초

Unraveling Biohydrogen Production and Sugar Utilization Systems in the Electricigen Shewanella marisflavi BBL25

  • Sang Hyun Kim;Hyun Joong Kim;Su Hyun Kim;Hee Ju Jung;Byungchan Kim;Do-Hyun Cho;Jong-Min Jeon;Jeong-Jun Yoon;Sang-Hyoun Kim;Jeong-Hoon Park;Shashi Kant Bhatia;Yung-Hun Yang
    • Journal of Microbiology and Biotechnology
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    • 제33권5호
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    • pp.687-697
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    • 2023
  • Identification of novel, electricity-producing bacteria has garnered remarkable interest because of the various applications of electricigens in microbial fuel cell and bioelectrochemical systems. Shewanella marisflavi BBL25, an electricity-generating microorganism, uses various carbon sources and shows broader sugar utilization than the better-known S. oneidensis MR-1. To determine the sugar-utilizing genes and electricity production and transfer system in S. marisflavi BBL25, we performed an in-depth analysis using whole-genome sequencing. We identified various genes associated with carbon source utilization and the electron transfer system, similar to those of S. oneidensis MR-1. In addition, we identified genes related to hydrogen production systems in S. marisflavi BBL25, which were different from those in S. oneidensis MR-1. When we cultured S. marisflavi BBL25 under anaerobic conditions, the strain produced 427.58 ± 5.85 µl of biohydrogen from pyruvate and 877.43 ± 28.53 µl from xylose. As S. oneidensis MR-1 could not utilize glucose well, we introduced the glk gene from S. marisflavi BBL25 into S. oneidensis MR-1, resulting in a 117.35% increase in growth and a 17.64% increase in glucose consumption. The results of S. marisflavi BBL25 genome sequencing aided in the understanding of sugar utilization, electron transfer systems, and hydrogen production systems in other Shewanella species.

Electricity Generation Coupled with Wastewater Treatment Using a Microbial Fuel Cell Composed of a Modified Cathode with a Ceramic Membrane and Cellulose Acetate Film

  • Seo, Ha-Na;Lee, Woo-Jin;Hwang, Tae-Sik;Park, Doo-Hyun
    • Journal of Microbiology and Biotechnology
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    • 제19권9호
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    • pp.1019-1027
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    • 2009
  • A noncompartmented microbial fuel cell (NCMFC) composed of a Mn(IV)-carbon plate and a Fe(III)-carbon plate was used for electricity generation from organic wastewater without consumption of external energy. The Fe(III)-carbon plate, coated with a porous ceramic membrane and a semipermeable cellulose acetate film, was used as a cathode, which substituted for the catholyte and cathode. The Mn(IV)-carbon plate was used as an anode without a membrane or film coating. A solar cell connected to the NCMFC activated electricity generation and bacterial consumption of organic matter contained in the wastewater. More than 99% of the organic matter was biochemically oxidized during wastewater flow through the four NCMFC units. A predominant bacterium isolated from the anode surface in both the conventional and the solar cell-linked NCMFC was found to be more than 99% similar to a Mn(II)-oxidizing bacterium and Burkeholderia sp., based on 16S rDNA sequence analysis. The isolate reacted electrochemically with the Mn(IV)-modified anode and produced electricity in the NCMFC. After 90 days of incubation, a bacterial species that was enriched on the Mn(IV)-modified anode surface in all of the NCMFC units was found to be very similar to the initially isolated predominant species by comparing 16S rDNA sequences.

Catalytic Oxidoreduction of Pyruvate/Lactate and Acetaldehyde/Ethanol Coupled to Electrochemical Oxidoreduction of $NAD^+$/NADH

  • Shin, In-Ho;Jeon, Sung-Jin;Park, Hyung-Soo;Park, Doo-Hyun
    • Journal of Microbiology and Biotechnology
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    • 제14권3호
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    • pp.540-546
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    • 2004
  • We deviced a new graphite-Mn(II) electrode and found that the modified electrode with Mn(II) can catalyze NADH oxidation and $NAD^+$ reduction coupled to electricity production and consumption as oxidizing agent and reducing power, respectively. In fuel cell with graphite-Mn(II) anode and graphite-Fe(III) cathode, the electricity of 1.5 coulomb (A x s) was produced from NADH which was electrochemically reduced by the graphite-Mn(II) electrode. When the initial concentrations of pyruvate and acetaldehyde were adjusted to 40 mM and 200 mM, respectively, about 25 mM lactate and 35 mM ethanol were produced from 40 mM pyruvate and 200 mM acetaldehyde, respectively, by catalysis of ADH and LDH in the electrochemical reactor with $NAD^+$ as cofactor and electricity as reducing power. By using this new electrode with catalytic function, the bioelectrocatalysts are engineered; namely, oxidoreductase (e.g., lactate dehydrogenase) and $NAD^+$ can function for biotransformation without electron mediator and second oxidoreductase for $NAD^+$/NADH recycling.

휘발성지방산으로부터 미생물연료전지에 의한 전기 생산 (Electricity Generation from Volatile Fatty Acids (VFAs) Using a Microbial Fuel Cell)

  • 오상은;김수정;양재의;정영상
    • 한국환경농학회지
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    • 제26권2호
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    • pp.179-185
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    • 2007
  • 미생물연료전지는 유기성 폐기물을 처리하면서 동시에 전기에너지를 얻을 수 있다는 측면에서 커다란 장점을 가지고 있다. 대부분의 유기성폐기물들이 발효과정을 거치면서 고농도의 VFAs가 생성되므로 미생물연료전지가 이들 VFAs로부터 전기를 얻을 수 있는지 알아보는 것은 아주 중요하다. 따라서 본 연구에서는 acetate, propionate, butyrate 및 실제 폐수인 식품가공폐수로부터 미생물 연료전지를 이용하여 전기발생 여부를 알아보았으며 다음과 같은 결론을 얻었다. 미생물연료전지를 이용하여 VFAs(acetate, propionate, butyrate)와 식품가공폐수로부터 전기를 얻을 수 있었고 투여한 acetate 농도에 비례하여 cathode로 전달되는 전자(Coulomb)는 비례하였다. 낮은 농도의 acetate에서 발생파워와 acetate 농도 사이에는 비례관계를 보였다. 이는 미생물연료전지가 낮은 농도의 유기물을 측정하는 센서로서의 가능성을 보여준다. acetate에 순화된 산화전극에 butyrate를 넣었을 때 순화의 시간이 필요하였으며 일정 순화시간 후 voltage가 증가하였다. 그러나 propionate를 넣었을 때는 순화시간 없이 급격하게 voltage가 상승하였다. 따라서 미생물연료전지의 생성파워가 향상된다면 유기성 폐기물을 처리하면서 실생활에 이용할 수 있는 전기로 변환하는 장치로서 이용될 수 있을 것으로 판단된다.

Electrochemical Regeneration of FAD by Catalytic Electrode Without Electron Mediator and Biochemical Reducing Power

  • JEON SUNG JIN;SHIN IN HO;SANG BYUNG IN;PARK DOO HYUN
    • Journal of Microbiology and Biotechnology
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    • 제15권2호
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    • pp.281-286
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    • 2005
  • We created a new graphite-Cu(II) electrode and found that the electrode could catalyze FADH$_2$ oxidation and FAD reduction coupled to electricity production and consumption, respectively. In a fuel cell with graphite-Cu(II) anode and graphite-Fe(III) cathode, the electricity was produced by coupling to the spontaneous oxidation of FADH$_2$ Fumarate and xylose were not produced from the enzymatic oxidation of succinate and xylitol without FAD, respectively, but produced with FAD. The production of fumarate and xylose in the reactor with FAD electrochemically regenerated was maximally 2- 5 times higher than that in the reactor with FAD. By using this new electrode with catalytic function, a bioelectrocatalysts can be engineered; namely, oxidoreductase (e.g., lactate dehydrogenase) and FAD can function for biotransformation without an electron mediator and second oxidoreductase for cofactors recycling.

Application of Biocathodes in Microbial Fuel Cells: Opportunities and Challenges

  • Gurung, Anup;Oh, Sang-Eun
    • 한국토양비료학회지
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    • 제45권3호
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    • pp.410-420
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    • 2012
  • The heavy reliance on fossil fuels, especially oil and gas has triggered the global energy crisis. Continued use of petroleum fuels is now widely recognized as unsustainable because of their depleting supplies and degradation to the environment. To become less dependent on fossil fuels, current world is shifting paradigm in energy by developing alternative energy sources mainly through the utilization of renewable energy sources. In particular, bioenergy recovery from wastes with the help of microorganism is viewed as one of the promising ways to mitigate the current global warming crisis as well as to supply global energy. It has been proved that microorganism can generate power by converting organic matter into electricity using microbial fuel cells (MFCs). MFC is a bioelectrochemical device that employs microbes to generate electricity from bio-convertible substrate such as wastewaters including municipal solid waste, industrial, agriculture wastes, and sewage. Sustainability, carbon neutral and generation of renewable energy are some of the major features of MFCs. However, the MFC technology is confronted with a number of issues and challenges such as low power production, high electrode material cost and so on. This paper reviews the recent developments in MFC technology with due consideration of electrode materials used in MFCs. In addition, application of biocathodes in MFCs has been discussed.

역전기습윤현상을 이용한 소형 에너지 수확장치 (Micro Energy Harvesting System Based On Reverse Electro Wetting On Dielectric (REWOD))

  • 조진현;김길연;최상백;전태준;김선민
    • 한국유체기계학회 논문집
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    • 제18권6호
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    • pp.27-30
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    • 2015
  • In this study, we attempted to harvest energy using water droplet based on Reverse Electro Wetting On Dielectric (REWOD) phenomenon between water droplet and dielectric surface without external bias. REWOD device can be fabricated via simple coating process, which is highly economic and easy. We believe that our system is well-suited for IoT(Internet of Things) embedded electronics that require low but consistent electricity. Moreover, our device can be integrated with window to generate electricity upon raindrops.

The biofuel cell: development of new materials for composing electron mediator-free and electrochemical active bacteria-free biofuel cell

  • Park Doohyun;Park Yongkeun;Kim Sikyun;Lee Daesik;Shin Inho
    • 한국미생물학회:학술대회논문집
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    • 한국미생물학회 2000년도 추계학술발표대회
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    • pp.92-99
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    • 2000
  • In this study biofuel cell is classified into 5 generation fuel cell system based on structural and structural difference. I optionally named the biofuel cell with electron mediators prototype, that with electrochemical active bacterium 2nd generation, that with modified electrode with NR 3rd generation, that with catalytic active electrode 4th generation, and that using air as a catholyte instead of ion selective membrane and cathode, respectively. The electricity production was compared among 5 types biofuel cell and was confirmed to be $50-100\%$ higher in 4th and 5th generation than in 1st to 3rd generation.

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미생물연료전지를 이용한 유가공 폐수로부터 전기생산 (Electricity Generation from Dairy Wastewater Using Microbial Fuel Cell)

  • 노성희;이성욱;김경량;김선일
    • 공업화학
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    • 제23권3호
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    • pp.297-301
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    • 2012
  • 미생물연료전지는 미생물의 신진대사 활동을 통해 자발적으로 바이오매스를 전기로 전환시키는 바이오 전기화학 시스템이다. 본 연구에서는 미생물 접종원으로 활성슬러지를 사용하였으며, 미생물연료전지의 전기생산을 위한 기질로서 유가공 폐수의 적용 가능성을 검토하였다. 전력발생 장치로서 미생물연료전지의 성능을 파악하고자 전지전위, 전력밀도, 순환전압전류 분석 및 지속가능 전력생산에 관한 특성을 유가공 폐수를 적용하여 평가하였다. Chemical Oxygen Demand (COD) 2650 mg/L의 유가공 폐수를 이용한 미생물연료전지 시스템에서 COD가 88% 제거되었으며, 최대 전력밀도는 $40\;mW/m^2$에 도달하였다. 본 연구 결과로부터 유가공 폐수를 효과적으로 처리하는 동시에 전기를 생산하기 위한 미생물연료전지 기술의 적용 가능성을 확인하였다.

Biofouling and Microbial Induced Corrosion -A Case Study

  • Mohammed, R.A.;Helal, A.M.;Sabah, N.
    • Corrosion Science and Technology
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    • 제7권1호
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    • pp.27-34
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    • 2008
  • In industrial and fluid handling systems, frequently the protective film forming materials suffer from severe corrosion due to microbial effects. As an example, various micro-organisms, including bacteria, exist in seawater normally fed to power and desalination plants. Unless seawater intakes are properly disinfected to control these microbial organisms, biological fouling and microbial induced corrosion (MIC) will be developed. This problem could destroy metallic alloys used for plant construction. Seawater intakes of cogeneration plants are usually disinfected by chlorine gas or sodium hypochlorite solution. The dose of disinfectant is designed according to the level of contamination of the open seawater in the vicinity of the plant intake. Higher temperature levels, lower pH, reduced flow velocity and oxidation potential play an important role in the enhancement of microbial induced corrosion and bio-fouling. This paper describes, in brief, the different types of bacteria, mechanisms of microbiological induced corrosion, susceptibility of different metal alloys to MIC and possible solutions for mitigating this problem in industry. A case study is presented for the power plant steam condenser at Al-Taweelah B-station in Abu Dhabi. The study demonstrates resistance of Titanium tubes to MIC.