• Title/Summary/Keyword: 미생물 연료전지

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Evaluation of possibility using cobalt poly-pyrrole carbon as an alternative oxygen reduction catalyst in microbial fuel cells (미생물 연료전지 내 Cobalt poly-pyrrole carbon의 산소환원촉매로서의 평가)

  • Kwon, Jae-Hyeong;Joo, Jin-Chul;Ahn, Chang-Hyuk;Song, Ho-Myeon;Ahn, Ho-Sang
    • Proceedings of the Korea Water Resources Association Conference
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    • 2012.05a
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    • pp.477-477
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    • 2012
  • 미생물 연료전지는 정부가 추진하고 있는 신성장 동력사업의 녹색성장 정책에 부합하는 환경융합 신기술로써 일상생활에서 배출되는 하 폐수와 같은 유기물질을 전자공여체로 이용하여 전기에너지를 생산 할 수 있다는 점에서 각광받고 있다. 미생물 연료전지는 산화전극부의 미생물이 공급된 유기물질 을 분해하여 전자와 수소이온을 생성시키며 이들은 산소가 존재하는 환원전극부로 이동하여 물로 환원 됨 으로써 전기를 생성한다. 전기 화학적 성능의 향상을 위해 미생물 연료전지에서는 환원전극부에 서의 산소와 전자 및 수소이온의 빠른 환원반응을 유도해 주는 Pt촉매를 이용한다. 하지만 고가의 Pt 촉매는 미생물 연료전지의 현장적용을 위한 규모확장 시 초기비용이 증가되는 문제점을 초래한다. 이에 미생물 연료전지의 대체촉매 개발에 대한 많은 연구가 진행되고 있다. 화학적 연료전지에 관한 논문에서 연료전지의 촉매로 산소 환원반응에 높은 성능을 보이는 Co-N/C 형태의 Cobalt poly-pyrrole carbon가 제시 되었다. 이는 가격적인 측면에서는 Pt촉매의 약1/10배 정도 수준이지만 셀 성능은 Pt촉매의 95%정도의 효율을 보인다는 측면에서 향후 Pt 대체촉매로 가능성을 보여주는 새로운 비금속 촉매물질이다. Cobalt poly-pyrrole carbon이 Pt-catalsyt 셀 전압 성능 대비 약 66 %의 효율을 보였고 내부저항과 최대전력 밀도에 있어서도 촉매를 사용하지 않은 경우와 비금속 촉매의 성능보다 높음을 알 수 있었다. 본 연구는 Pt-catalsyt를 대체할 수 있는 저가의 산소환원 촉매물질 발굴을 위해 미생물연료전지에서 사용된 전례가 없으며 현재 화학전지의 촉매로 널리 쓰이고 있는 Cobalt poly-pyrrole carbon의 산소환원 촉매로써의 이용가능성을 평가하기 위해 실시되었으며, 평가한 결과는 첫 번째로 Cobalt poly-pyrrole carbon을 사용한 경우가 촉매를 사용하지 않은 경우와 비금속 촉매보다 환원 전극부에서의 원활한 환원작용이 진행되고 있음을 추측할 수 있으며 Pt-catalyst와 비교하였을 때 성능 대비 저렴한 가격으로 가격 경쟁력에 있어서 우월하다고 판단되었고 두 번째로 전기화학적 성능평가 및 EIS를 이용한 환원전극부의 내부저항 평가를 실시한 결과 셀 전압에 있어서 가장 많은 도말량 ($2.0mg/cm^2$)이 높은 성능을 보이고 있음을 알 수 있었다.

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Continuous electricity generation in microbial fuel cells with non-precious metal catalysts (비귀금속촉매 미생물연료전지의 연속운전을 통한 전기 생산)

  • Moon, Chungman;Kim, Dong-Hoon
    • Journal of the Korea Organic Resources Recycling Association
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    • v.23 no.1
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    • pp.45-51
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    • 2015
  • In this study, continuous microbial fuel cells (MFCs) were operated using non-precious metal catalysts such as iron(II) phthalocyanine (FePc) and cobalt tetramethoxyphenylporphyrin (CoTMPP)) as alternative cathode catalysts for platinum. To evaluate MFCs performance, operational conditions of organic loading rate (OLR) (0.5~3 g COD/L/d) and hydraulic retention rate (HRT) (0.25~1 day) were changed. Power density of MFCs were determined by cathode electrode performance. The maximum power density was $3.3W/m^3$ with platinum at OLR 3 g COD/L/d. Given each HRTs at 1 g COD/L/d, FePc showed to be a better alternative for platinum than CoTMPP because the power density of MFC with FePc was similar to that of MFC with platinum. CoTMPP catalyst, however, showed the lowest power density due to increase of internal resistance during continuous operation.

Measurement of Activation and Ohmic Losses using a Current Interruption Technique in a Microbial Fuel Cell (미생물연료전지(MFC)에서 전류차단법(current interrupt technique)을 이용한 활성화전압손실(activation loss)과 저항전압손실(Ohmic loss)의 측정)

  • Park, Kyung-Won;Oh, Sang-Eun
    • Journal of Korean Society of Environmental Engineers
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    • v.32 no.4
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    • pp.357-362
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    • 2010
  • Electricity can be directly generated from organic matter even wastewaters using a microbial fuel cell. To achieve high power in MFCs, finding factors decreasing activation and Ohmic losses is very important. In this study we determined activation loss at the anode and cathode and Ohmic loss using the current interruption technique in a H-type MFC. Activation loss at the cathode was four times higher that that of anode activation loss even if pt-coated carbon (0.5 $mg/cm^2$;10%Pt) was used as the cathode. Ohmic loss determined using current interruption technique (1146 ${\Omega}$) was almost same as the internal resistance (1167 ${\Omega}$) measured using AC impedance. The sum of activation losses at the anode and cathode was the same as the value of activation loss of the cell.

Effect of Pyrite and Indigenous Bacteria on Electricity Generation Using Mine Tailings (황철석과 토착미생물이 광미를 활용한 전기 생산에 미치는 영향)

  • Ju, Won Jung;Jho, Eun Hea;Nam, Kyoungphile
    • Ecology and Resilient Infrastructure
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    • v.2 no.1
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    • pp.93-98
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    • 2015
  • Acid mine drainage (AMD) producing mine tailings can be beneficially recycled to generate electricity by applying fuel cell technology. Pyrite-containing mine tailings and indigenous bacteria from abandoned mine areas were used to construct fuel cells to investigate the effect of pyrite contents and the presence of iron-oxidizing bacteria. The results showed an enhanced electrical performance with a higher content of pyrite in mine tailings. The inoculation of the indigenous bacteria also enhanced the current density by about three times, and the power density by about 10 times. Overall, this study shows that the combined use of the ecological function of indigenous bacteria from mine areas and mine-tailings in fuel cells does not only contribute to reducing harmful effects of mine tailings but also generate electricity.

Electric Characteristics of the MFC according to different electrode structures and materials (미생물 연료전지의 전극 재료와 구조에 따른 전기적 특성)

  • Choi, Kyu-man
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.7 no.1
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    • pp.36-39
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    • 2014
  • MFC(microbial fuel cell) is the device to produce the electricity by using the microbes which are living in the waste water. In this paper, the electric characteristics of the MFC were investigated according to each different structure and electrode materials. The voltage being reversed phenomenon was observed in the MFC which uses the cupper plate as the cathode material. This result comes from the oxidation reaction of the cupper plate electrode in this MFC. And this MFC has lower output voltage than one that has a platinum plate electrode. The smaller gap distance of the cupper plate electrode of the MFC showed the higher output voltage. The larger electrode area of the cupper plate electrode showed that the reaching time of the output voltage to the maximum value was delayed.

Microbial Fuel Cells for Bioenergy Generation and Wastewater Treatment (바이오에너지 생산 및 폐수처리를 위한 미생물연료전지)

  • Nah, Jaw-Woon;Roh, Sung-Hee
    • Applied Chemistry for Engineering
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    • v.24 no.6
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    • pp.567-578
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    • 2013
  • A microbial fuel cell (MFC) is a bio-electrochemical device that converts chemical energy in the chemical bonds in organic compounds to electrical energy through catalytic reactions of microorganisms under anaerobic conditions. Power density and Coulombic efficiency are significantly affected by the types of microbe in the anodic chamber of an MFC, configurations of the system and operating conditions. The achievable power output from MFC increased remarkably by modifying their designs such as the optimization of MFC configurations, the physical and chemical operating conditions, and the choice of biocatalysts. This article presents a critical review on the recent advances made in MFC research with the emphasis on MFC configurations, optimization of important operating parameters, performances and future applications of MFC.

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

  • Roh, Sung-Hee;Lee, Sung-Wook;Kim, Kyung-Ryang;Kim, Sun-Il
    • Applied Chemistry for Engineering
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    • v.23 no.3
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    • pp.297-301
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    • 2012
  • Microbial fuel cell (MFC) is the major of bio-electrochemical system which can convert biomass spontaneously into electricity through the metabolic activity of the microorganisms. In this study, we used an activated sludge as a microbial inoculum and then investigated the feasibility of using dairy wastewater as a possible substrate for generating electricity in MFC. To examine the performance of MFC as power generator, the characteristics on cell potentials, power density, cyclic voltammetric analysis and sustainable power estimation were evaluated for dairy wastewater. The maximum power density of $40\;mW/m^2$was achieved when the dairy wastewater containing 2650 mg/L COD was used, leading to the removal of 88% of the COD. The results from this study demonstrate the feasibility of using MFC technology to generate electricity while simultaneously treating dairy wastewater effectively.

Characteristics of Microbial Fuel Cells Using Pig Waste and sPAES Membrane (돼지 분뇨와 sPAES 막을 이용한 미생물 연료전지의 특성)

  • Lee, Se-Hoon;Mun, Ji-Yoon;Kim, Young-Sook;Chu, Cheun-Ho;Na, Il-Chai;Lee, Jeong-Hoon;Lee, Moo-Seok;Lee, Dong-Hoon;Park, Kwon-Pil
    • Korean Chemical Engineering Research
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    • v.54 no.4
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    • pp.453-458
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    • 2016
  • Microbial fuel cells (MFC) were operated with pig wastes and PEMFC (Proton Exchange Membrane Fuel Cells) MEA (Membrane and Electrode Assembly). Performance of hydrocarbon membrane was compared with that of perfluoro membrane at MFC condition. Sulfonated-Poly(Arylene Ether Sulfone) was used as hydrocarbon membrane and Gore membrane was used as perfluoro membrane. OCV of sPAES MEA was 50mV higher than that of Gore MEA and power density of sPAES MEA was similar that of Gore MEA. Reinforcement of sPAES membrane stabilized the performance of MEA in MFC. The highest performance was obtained at temperature of $45^{\circ}C$ and with culture solution circulation rate of 50 ml/min. The highest power density was $1,100mW/m^2$ at optimum condition in MFC using pig waste.

Recent Advance in Microbial Fuel Cell based on Composite Membranes (복합막 기반의 미생물 연료전지 연구에 대한 총설)

  • Kim, Se Min;Patel, Rajkumar;Kim, Jong Hak
    • Membrane Journal
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    • v.31 no.2
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    • pp.120-132
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    • 2021
  • Microbial fuel cell (MFC) is a bio-electrochemical device that generates electricity by utilizing bacterial catalytic activity that degrades wastewater. Proton exchange membrane (PEM) is the core component of MFC that decides its performance, and Nafion membrane is the most widely used PEM. In spite of the excellent performance of Nafion, it has drawbacks such as high cost, biofouling issue, and non-biodegradable property. Recent studies in MFC attempted to synthetize the alternative membrane for Nafion by incorporating various polymers, sulfonating, fluorinating, and doping other chemicals. This review summarizes characteristics and performances of different composite membrane based MFCs, mostly focusing on PEM.

Sustainability Indices (=Green Star) for Microbial Fuel Cell (미생물 연료전지 영속발전 지표개발)

  • Song, Ha-Geun;KOO, Ja-Kong
    • Journal of the Korea Organic Resources Recycling Association
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    • v.23 no.2
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    • pp.47-52
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    • 2015
  • A microbial fuel cell (MFC) is a device that can be obtained electricity from a variety of organic through the catalytic reaction of the microorganism. The MFC can be applied to various fields, and research is required to promote the performance of the microbial fuel cell for commercialization. The lower performance of an MFC is due to oxygen reduction at the cathode and the longer time of microbial degradation at anode. The MFC amount of power is sufficient but, in consideration of many factors, as a renewable energy, now commonly power density as compared to Nafion117 it is an ion exchange membrane used is PP (Poly Propylene) from 80 to about 11 fold higher, while reducing the cost to process wastewater is changed to a microporous non-woven fabric of a low cost, it may be energy-friendly environment to generate electricity. All waste, in that it can act as a bait for microorganisms, sustainability of the microbial fuel cell is limitless. The latest research on the optimization and performance of the operating parameters are surveyed and through the SSaM-GG(Smart, Shared, and Mutual- Green Growth) or GG-SSaM(Green Growth - Smart, Shared, and Mutual) as the concept of sustainable development in MFC, the middle indices are developed in this study.