• 제목/요약/키워드: Microbial Fuel Cell

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미생물연료전지의 가축분뇨 처리 가능성 연구 (Studies on a Feasibility of Swine Farm Wastewater Treatment using Microbial Fuel Cell)

  • 장재경;김세희;유영선;이성현;김종구;강연구;김영화;최정은
    • 한국미생물·생명공학회지
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    • 제38권4호
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    • pp.461-466
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    • 2010
  • 본 연구는 미생물연료전지를 이용하여 액비를 처리하고 동시에 유용한 전기에너지 발생이 가능한지를 실험한 것이다. 탄소섬유전극(graphite felt)와 스테인레스 스틸망을 다른 비율로 충진한 single-chamber 미생물연료전지를 이용하였으며 탄소섬유전극보다 스테인레스망을 더 많이 충진한 미생물연료전지를 대조구(CMFC)로 하여 탄소섬유전극이 더 많이 충진된 미생물연료전지(SMFC)와 서로 비교하였다. 농화 배양이 끝난 후, SMFC로부터 발생되는 전류는 $3.167{\pm}80\;mg/L$ 의 액비를 공급할 때 18 mA가 안정적으로 발생되었다. 이때 최대 전력밀도와 전류밀도는 각각 $680\;mW/m^3$$3,770\;mA/m^3$이었으며, CMFC의 전력밀도와 전류밀도보다는 높았다. 화학적산소요구량(COD)는 SMFC와 CMFC에서 $3.718{\pm}80\;mg/L$에서 $865{\pm}21$$930{\pm}14\;mg/L$로 감소하여 각각 72.7%와 70.6%가 감소되었다. SMFC와 CMFC로부터 부유물질(SS)은 99% 이상이 감소되는 것을 확인하였다. 또한 SMFC의 암모니아성질소, 질산성질소, 그리고 인산염인과 같은 영향물질 농도의 변화도 각각 65.4%, 57.5%, 그리고 73.7%이 감소되었으며 CMFC의 경우도 거의 유사한 제거율을 보였다. 이들 결과로부터 저가 재료가 충진한 미생물 연료전지를 이용함으로써 경제적 효과를 기대할 수 있음은 물론 가축분뇨로부터 적지만 전기 에너지가 발생하는 것을 확인할 수 있었다.

Effects of electron donors and acceptors in generating bioelectrical energy using microbial fuel cells

  • Gurung, Anup;Oh, Sang-Eun
    • 한국환경농학회지
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    • 제31권1호
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    • pp.24-29
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    • 2012
  • BACKGROUND: In recent years, microbial fuel cells (MFCs) have emerged as a promising technology for recovering renewable energy from waste biomass, especially wastewater. In this study, the possibility of bioelectricity generation in two chambered mediator-less microbial fuel cells (MFCs) was successfully demonstrated using fermentable and non-fermentable substrates. METHODS AND RESULTS: Two different electron acceptors have been tested in the cathode chamber for the effects of reducing agent on the power generation in MFCs. The average voltages of $0.26{\pm}0.014$ V and $0.36{\pm}0.02$ V were achieved with acetate using oxygen and potassium ferricyanide as reducing agent, respectively. Similarly, with glucose the average voltages of $0.256{\pm}0.05$ V and $0.340{\pm}0.04$ V were obtained using oxygen and ferricyanide, respectively. Using potassium ferricyanide as the reducing agent, the power output increases by 39 and 43% with acetate and glucose, respectively, as compared to the dissolved oxygen. Slightly higher coulombic efficiency (CE%) was obtained in acetate as compared to MFCs operated with glucose. The maximum power densities of 124 mW/$m^2$ and 204 mW/$m^2$ were obtained using dissolved oxygen and $K_3Fe(CN)_6$, respectively. CONCLUSION(s): This study demonstrates that power generation from the MFCs can be influenced significantly by the different types of catholyte. Relatively higher CE was obtained with $K_3Fe(CN)_6$. Thus, application of $K_3Fe(CN)_6$ as the catholyte can be vital for scaling uppower generation from the MFCs forreal time applications.

포도당을 주입한 수중퇴적물을 이용한 연료전지시스템에 있어서 미생물군집 분석 (Analysis of Microbial Communities in Aquatic Sediment Microbial Fuel Cells Injected with Glucose)

  • 김민;;김수현;장재수;고성철
    • 미생물학회지
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    • 제48권4호
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    • pp.254-261
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    • 2012
  • 본 연구의 목적은 포도당을 자연의 저질기반 미생물연료전지에 주입할 경우 전기생산을 최적화하기 위한 것이며, 이 때 관련된 미생물의 군집을 분석하고 관련미생물의 역할을 검토하고자 하였다. 1,000 mg/L의 포도당이 주입되었을 때 생성되는 전류가 약 3배 가량 증가하였다. 이러한 증가는 주로 발효세균과 전기생성세균의 상호작용에 기인하는 것으로서, 이는 발효미생물에 의해 생성된 유기산이 전기생성 미생물에 의해서 분해되므로 유기산의 축적을 방지하여 되먹임저해(feedback inhibition) 현상을 감소 시키는데 그 원인이 있는 것으로 보인다. 반면, 더 높은 농도의 포도당이 주입되었을 시에는 전류가 떨어지거나 큰 증가가 일어나지 않았다. 만약 적절한 농도의 포도당이 주입될 시, 전기생성 미생물과 발효미생물이 동시에 포도당을 분해하면서 피드백을 제거하며 전류생성이 증가함을 알 수 있었다. 포도당을 토양에 주입하였을 시에 Clostridium sp.과 같은 발효미생물이 많이 나타났다. 포도당의 발효는 전기생성에 있어서 긍정적 영향과 부정적 영향을 미칠 수 있음이 밝혀졌다. 즉 발효산물이 전기생성미생물에 의해서 분해되어서 사용된다면 전기생성이 증가한다. 하지만, 발효산물이 전기생성미생물에 의해서 분해되지 못한다면 여러 전기생성을 억제하는 화학적반응(pH 저하, 메탄생성, 유기산 축적 등)이 일어나고 미생물연료전지와 관계없는 미생물들이 주입된 유기물을 대부분 분해하여 전기생성이 저하될 수 있음이 밝혀졌다. 적절한 농도의 포도당 주입을 통한 발효세균(Clostridium sp. 등)과 전기발생균(Geobacter sp. 등)의 적절한 조합은 자연상태에서의 혼합미생물존재 환경에서의 전기생산을 증가시킬 수 있을 것으로 기대된다.

Boosting Power Generation by Sediment Microbial Fuel Cell in Oil-Contaminated Sediment Amended with Gasoline/Kerosene

  • Aleman-Gama, Elizabeth;Cornejo-Martell, Alan J.;Kamaraj, Sathish Kumar;Juarez, Katy;Silva-Martinez, Susana;Alvarez-Gallegos, Alberto
    • Journal of Electrochemical Science and Technology
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    • 제13권2호
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    • pp.308-320
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    • 2022
  • The high internal resistance (Rint) that develops across the sediment microbial fuel cells (SMFC) limits their power production (~4/10 mW m-2) that can be recovered from an initial oil-contaminated sediment (OCS). In the anolyte, Rint is related to poor biodegradation activity, quality and quantity of contaminant content in the sediment and anode material. While on the catholyte, Rint depends on the properties of the catholyte, the oxygen reduction reaction (ORR), and the cathode material. In this work, the main factors limiting the power output of the SMFC have been minimized. The power output of the SMFC was increased (47 times from its initial value, ~4 mW m-2) minimizing the SMFC Rint (28 times from its initial value, 5000 ohms), following the main modifications. Anolyte: the initial OCS was amended with several amounts of gasoline and kerosene. The best anaerobic microbial activity of indigenous populations was better adapted (without more culture media) to 3 g of kerosene. Catholyte: ORR was catalyzed in birnessite/carbon fabric (CF)-cathode at pH 2, 0.8M Na2SO4. At the class level, the main microbial groups (Gammaproteobacteria, Coriobacteriia, Actinobacteria, Alphaproteobacteria) with electroactive members were found at C-anode and were associated with the high-power densities obtained. Gasoline is more difficult to biodegrade than kerosene. However, in both cases, SMFC biodegradation activity and power output are increased when ORR is performed on birnessite/CF in 0.8 M Na2SO4 at pH 2. The work discussed here can focus on bioremediation (in heavy OCS) or energy production in future work.

암모니아성 질소가 미생물연료전지에서 전류 발생에 미치는 영향 (Effect of ammonium on the current generation in the microbial fuel cell)

  • 장재경;최정은;유영선;이성현;김종구;강연구;김영화;이형모
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2011년도 춘계학술대회 초록집
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    • pp.219.1-219.1
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    • 2011
  • These studies carried out to know the effect of ammonium on the current generation in the microbial fuel cells (MFCs). MFCs used in the study were enriched with anaerobic digestion sludge and operated for 3 years using artificial wastewater (AWW). When the current was stably generated, ammonium ion with $27.0{\pm}0.0$, $51.5{\pm}0.0$, $103.5{\pm}0.0mg/L$ with acetate fed into the anode compartment. The current values under condition included ammonium were changed from its initial $6.30{\pm}0.06$ to $6.28{\pm}0.36$, $5.95{\pm}0.61$, $5.64{\pm}0.38mA$, respectively. The current value was slightly decreased to $5.64{\pm}0.38mA$ compared to $6.30{\pm}0.06mA$ generated from MFC without ammonium ion in the AWW. But After 3days operating under ammonium concentration with $103.5{\pm}0.0mg/L$, the current was unstably generated when artificial wastewater without ammonium was fed again. MFC enriched with AWW without ammonium ion was inhibited by high concentration of ammonium. At this time, the ammonium was removed 5.27~16.41 mg per day under all conditions.

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Phylogenetic Diversity of Dominant Bacterial and Archaeal Communities in Plant-Microbial Fuel Cells Using Rice Plants

  • Ahn, Jae-Hyung;Jeong, Woo-Suk;Choi, Min-Young;Kim, Byung-Yong;Song, Jaekyeong;Weon, Hang-Yeon
    • Journal of Microbiology and Biotechnology
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    • 제24권12호
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    • pp.1707-1718
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    • 2014
  • In this study, the phylogenetic diversities of bacterial and archaeal communities in a plant-microbial fuel cell (P-MFC) were investigated together with the environmental parameters, affecting its performance by using rice as a model plant. The beneficial effect of the plant appeared only during a certain period of the rice-growing season, at which point the maximum power density was approximately 3-fold higher with rice plants. The temperature, electrical conductivity (EC), and pH in the cathodic and anodic compartments changed considerably during the rice-growing season, and a higher temperature, reduced difference in pH between the cathodic and anodic compartments, and higher EC were advantageous to the performance of the P-MFC. A 16S rRNA pyrosequencing analysis showed that the 16S rRNAs of Deltaproteobacteria and those of Gammaproteobacteria were enriched on the anodes and the cathodes, respectively, when the electrical circuit was connected. At the species level, the operational taxonomic units (OTUs) related to Rhizobiales, Geobacter, Myxococcus, Deferrisoma, and Desulfobulbus were enriched on the anodes, while an OTU related to Acidiferrobacter thiooxydans occupied the highest proportion on the cathodes and occurred only when the circuit was connected. Furthermore, the connection of the electrical circuit decreased the abundance of 16S rRNAs of acetotrophic methanogens and increased that of hydrogenotrophic methanogens. The control of these physicochemical and microbiological factors is expected to be able to improve the performance of P-MFCs.

미생물연료전지에서 공급기질에 따른 전기발생량 및 미생물 군집구조 비교 (Comparison of Electricity Generation and Microbial Community Structure in MFCs Fed with Different Substrates)

  • 유재철;조해인;조순자;이태호
    • 한국물환경학회지
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    • 제26권4호
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    • pp.608-613
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    • 2010
  • Electricity generation of microbial fuel cells (MFC) is greatly affected by the kind of feed substrates because substrates would change microbial community of electrochemically active bacteria (EAB) able to transfer electrons to electrode. The effect of different substrates on electricity generation and microbial community of MFC was investigated. Two-chamber MFCs fed with acetate (A-MFC), butyrate (B-MFC), propionate (P-MFC), glucose (G-MFC) and a mixture (M-MFC) of the 4 substrates (acetate : butyrate : propionate : glucose = 1 : 1 : 1 : 1 as $COD_{Cr}$ base) were operated under continuous mode. The maximum power density was found from the M-MFC ($190W/m^3$) which showed the lowest internal resistance ($89{\Omega}$). The maximum power densities of the pure substrates feed MFCs were in order of A-MFC ($25W/m^3$), P-MFC ($21W/m^3$), B-MFC ($20W/m^3$) and G-MFC ($9W/m^3$). In DGGE analysis, the microbial community structure in suspension was quite different from each others depending on feed substrates, while the community structure in the biofilm was relatively similar regardless of the substrates. This result suggests that the feed substrates would affect the microbial community of suspended growth bacteria than attached growth bacteria resulting in difference of electricity generation in MFCs.

미생물 농도에 따르는 Air-Cathode MFC의 전력발생과 유기물질제거 특성 (Characteristics of Power Generation and Organic Matter Removal in Air-Cathode MFC with respect to Microbial Concentration)

  • 김도영;임봉수;최찬수;김대현
    • 한국물환경학회지
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    • 제28권6호
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    • pp.917-922
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    • 2012
  • In order to improve applicability of a microbial fuel cell the laboratory-scaled study has been performed by adopting an air-cathode MFC system with high concentrated anaerobic slugies in this study. The concentrations of microbes are grouped into three types, Type A (TS 1.7%), Type B (TS 1.1%) and Type C (TS 0.51%). The open circuit voltage $(V_{oc})$ characteristics showed that the medium microbes concentration of 1.10% (Type B) kept a constant voltage of 1.0 V for 150 hours, which showed the longest time among three types (Type A and Type C). The discharge charge curves for a closed circuit with $500 \Omega$ also showed that Type B generated a stable discharge voltage of 0.8 V for a longer time as in the open circuit voltage case. This could be explained by the relatively large amount of the attached microbes. Under the $V_{oc}$condition the COD removal efficiency of Type B was found to be low for a long time, but those of Type A and C were found to be high for a short period of time. Therefore, the suspended microbes could decrease the coulombic efficiency. It was concluded that the high $V_{oc}$ was caused by low COD and the $V_{oc}$ became low after the COD removal. The COD reduction resulted in an unstable and low working voltage. From the polarization characteristics Type A was found to show the highest power density of $193\;mW/m^2$ with a fill factor of 0.127 due to the relatively high remaining COD even after the MFC reaction.