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題名:應用電發酵技術於農業廢棄物能資源化:回顧與展望
書刊名:臺灣能源期刊
作者:林鴻政潘述元王柏翔
作者(外文):Lin, Hung-chengPan, Shu-yuanWang, Po-hsiang
出版日期:2020
卷期:7:4
頁次:頁311-324
主題關鍵詞:循環生物經濟電化學生物精煉厭氧消化微生物轉化Circular bioeconomyElectrochemistryBiorefineryAnaerobic digestionMicrobial fermentation
原始連結:連回原系統網址new window
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期刊論文
1.Bahari, M.、Malmberg, M. A.、Brown, D. M.、Hadi Nazari, S.、Lewis, R. S.、Watt, G. D.、Harb, J. N.(2020)。Oxidation efficiency of glucose using viologen mediators for glucose fuel cell applications with non-precious anodes。Applied Energy,261。  new window
2.Araújo, O. Q.、Coelho, M. A. Z.、Margarit, I. C.、Vaz-Junior, C. A.、Rocha-Leão, M. H. M.(2004)。Electrical stimulation of Saccharomyces cerevisiae cultures。Brazilian Journal of Microbiology,35(1/2),97-103。  new window
3.Agler, M. T.、Wrenn, B. A.、Zinder S. H.、Angenent, L. T.(2011)。Waste to bioproduct conversion with undefined mixed cultures: the carboxylate platform。Trends in biotechnology,29(2),70-78。  new window
4.Borello, D.、Gagliardi, G.、Aimola, G.、Ancona, V.、Grenni, P.、Bagnuolo, G.、Garbini, G. L.、Rolando, L.、Barra Caracciolo, A.(2021)。Use of microbial fuel cells for soil remediation: A preliminary study on DDE。International Journal of Hydrogen Energy,46(16),10131-10142。  new window
5.Budihardjo, Mochamad Arief、Syafrudin、Effendi, A. J.、Hidayat, S.、Purnawan, C.、Lantasi, A. I. D.、Muhammad, F. I.、Ramadan, B. S.(2021)。Waste valorization using solid-phase microbial fuel cells (SMFCs): Recent trends and status。Journal of Environmental Management,277。  new window
6.Choi, O.、Kim, T.、Woo, H. M.、Um, Y.(2014)。Electricity-driven metabolic shift through direct electron uptake by electroactive heterotroph Clostridiumpasteurianum。Scientific Reports,4(1)。  new window
7.Chandrasekhar, K.、Amulya, K.、Mohan, S. V.(2015)。Solid phase bio-electrofermentation of food waste to harvest value-added products associated with waste remediation。Waste management,45,57-65。  new window
8.Chandrasekhar, K.、Ahn, Young-Ho(2017)。Effectiveness of piggery waste treatment using microbial fuel cells coupled with elutriated-phased acid fermentation。Bioresource technology,244,650-657。  new window
9.Chandrasekhar, K.、Mohan, S. V.(2012)。Bioelectrochemical remediation of real field petroleum sludge as an electron donor with simultaneous power generation facilitates biotransformation of PAH: effect of substrate concentration。Bioresource technology,110,517-525。  new window
10.Chang, C.-C.、Kao, W.、Yu, C.-P.(2020)。Assessment of voltage reversal effects in the serially connected biocathode-based microbial fuel cells through treatment performance, electrochemical and microbial community analysis。Chemical Engineering Journal,397。  new window
11.Gildemyn, S.、Verbeeck, K.、Slabbinck, R.、Andersen, S. J.、Prévoteau, A.、Rabaey, K.(2015)。Integrated production, extraction, and concentration of acetic acid from CO2 through microbial electrosynthesis。Environmental Science & Technology Letters,2(11),325-328。  new window
12.Flynn, J. M.、Ross, D. E.、Hunt, K. A.、Bond, D. R.、Gralnick, J. A.(2010)。Enabling Unbalanced Fermentations by Using Engineered Electrode-Interfaced Bacteria。MBio,1(5)。  new window
13.Cok, B.、Tsiropoulos, I.、Roes, A. L.、Patel, M. K.(2014)。Succinic acid production derived from carbohydrates: An energy and greenhouse gas assessment of a platform chemical toward a bio‐based economy。Biofuels, Bioproducts and Biorefining,8(1),16-29。  new window
14.Hongo, M.、Iwahara, M.(1979)。Application of electro-energizing method to L-glutamic acid fermentation。Agricultural and Biological Chemistry,43(10),2075-2081。  new window
15.Jeon, B.-Y.、Hwang, T.-S.、Park, D.-H.(2009)。Electrochemical and biochemical analysis of ethanol fermentation of zymomonas mobilis KCCM11336。Journal of microbiology and biotechnology,19(7),666-674。  new window
16.Jia, X.、Li, M.、Wang, Y.、Wu, Y.、Zhu, L.、Wang, X.、Zhao, Y.(2020)。Enhancement of hydrogen production and energy recovery through electro-fermentation from the dark fermentation effluent of food waste。Environmental Science and Ecotechnology,1。  new window
17.Khosravanipour Mostafazadeh, A.、Drogui, P.、Brar, S. K.、Tyagi, R. D.、Bihan, Y. L.、Buelna, G.(2017)。Microbial electrosynthesis of solvents and alcoholic biofuels from nutrient waste: A review。Journal of Environmental Chemical Engineering,5(1),940-954。  new window
18.Kim, M.、Gomec, C. Y.、Ahn, Y.、Speece, R.(2003)。Hydrolysis and acidogenesis of particulate organic material in mesophilic and thermophilic anaerobic digestion。Environmental technology,24,1183-1190。  new window
19.Kracke, F.、Krömer, J. O.(2014)。Identifying target processes for microbial electrosynthesis by elementary mode analysis。BMC bioinformatics,15(1)。  new window
20.Jiang, Y.、Lu, L.、Wang, H.、Shen, R.、Ge, Z.、Hou, D.、Chen, X.、Liang, P.、Huang, X.、Ren, Z. J.(2018)。Electrochemical control of redox potential arrests methanogenesis and regulates products in mixed culture electrofermentation。ACS Sustainable Chemistry & Engineering,6(7),8650-8658。  new window
21.Kumar, P.、Chandrasekhar, K.、Kumari, A.、Sathiyamoorthi, E.、Kim, B. S.(2018)。Electro-Fermentation in Aid of Bioenergy and Biopolymers。Energies,11(2)。  new window
22.Liu, S.、Deng, Z.、Li, H.、Feng, K.(2019)。Contribution of electrodes and electric current to process stability and methane production during the electro-fermentation of food waste。Bioresource technology,288。  new window
23.Kumar, P.、Patel, S. K.、Lee, J.-K.、Kalia, V. C.(2013)。Extending the limits of Bacillus for novel biotechnological applications。Biotechnology advances,31(8),1543-1561。  new window
24.Luo, H.、Bai, J.、He, J.、Liu, G.、Lu, Y.、Zhang, R.、Zeng, C.(2020)。Sulfate reduction and elemental sulfur recovery using photoelectric microbial electrolysis cell。Science of the Total Environment,728。  new window
25.Mathew, A. S.、Wang, J.、Luo, J.、Yau, S.-T.(2015)。Enhanced ethanol production via electrostatically accelerated fermentation of glucose using Saccharomyces cerevisiae。Scientific Reports,5。  new window
26.Mézes, L.、Bai, A.、Nagy, D.、Cinka, I.、Gabnai, Z.(2017)。Optimization of Raw Material Composition in an Agricultural Biogas Plant。Trends in Renewable Energy,3(1),61-75。  new window
27.Modestra, J. A.、Babu, M. L.、Mohan, S. V.(2015)。Electro-fermentation of real-field acidogenic spent wash effluents for additional biohydrogen production with simultaneous treatment in a microbial electrolysis cell。Separation and Purification Technology,150,308-315。  new window
28.Mohan, S. V.、Nikhil, G.、Chiranjeevi, P.、Reddy, C. N.、Rohit, M.、Kumar, A. N.、Sarkar, O.(2016)。Waste biorefinery models towards sustainable circular bioeconomy: critical review and future perspectives。Bioresource technology,215,2-12。  new window
29.Moscoviz, R.、Toledo-Alarcon, J.、Trably, E.、Bernet, N.(2016)。Electro-Fermentation: How To Drive Fermentation Using Electrochemical Systems。Trends in Biotechnology,34(11),856-865。  new window
30.Pan, S.-Y.、Li, C.-W.、Huang, Y.-Z、Fan, C.、Tai, Y.-C.、Chen, Y.-L.(2020)。Composition-Oriented Estimation of Biogas Production from Major Culinary Wastes in an Anaerobic Bioreactor and its Associated CO2 Reduction Potential。Bioresource Technology,318。  new window
31.Qu, G.、Lv, P.、Cai, Y.、Tu, C.、Ma, X.、Ning, P.(2020)。Enhanced anaerobic fermentation of dairy manure by microelectrolysis in electric and magnetic fields。Renewable Energy,146,2758-2765。  new window
32.Pan, S.-Y.、Lin, Y. J.、Snyder, S. W.、Ma, H.-W.、Chiang, P.-C.(2015)。Development of Low-Carbon-Driven Bio-product Technology Using Lignocellulosic Substrates from Agriculture: Challenges and Perspectives。Current Sustainable/Renewable Energy Reports,2(4),145-154。  new window
33.Rabaey, K.、Girguis, P.、Nielsen, L. K.(2011)。Metabolic and practical considerations on microbial electrosynthesis。Current opinion in biotechnology,22(3),371-377。  new window
34.Redwood, M. D.、Orozco, R. L.、Majewski, A. J.、Macaskie, L. E.(2012)。An integrated biohydrogen refinery: synergy of photofermentation, extractive fermentation and hydrothermal hydrolysis of food wastes。Bioresource technology,119,384-392。  new window
35.Ren, G.、Hu, A.、Huang, S.、Ye, J.、Tang, J.、Zhou, S.(2018)。Graphite-assisted electro-fermentation methanogenesis: Spectroelectrochemical and microbial community analyses of cathode biofilms。Bioresource technology,269,74-80。  new window
36.Suzuki, M.、Tamiya, E.、Matsuoka, H.、Sugi, M.、Karube, I.(1986)。Electrical stimulation of hybridoma cells producing monoclonal antibody to cAMP。Biochimica et Biophysica Acta (BBA)-Molecular Cell Research,889(2),149-155。  new window
37.Sasaki, D.、Sasaki, K.、Watanabe, A.、Morita, M.、Matsumoto, N.、Igarashi, Y.、Ohmura, N.(2013)。Operation of a cylindrical bioelectrochemical reactor containing carbon fiber fabric for efficient methane fermentation from thickened sewage sludge。Bioresource technology,129,366-373。  new window
38.Srikanth, S.、Reddy, M. V.、Mohan, S. V.(2012)。Microaerophilic microenvironment at biocathode enhances electrogenesis with simultaneous synthesis of polyhydroxyalkanoates (PHA) in bioelectrochemical system (BES)。Bioresource technology,125,291-299。  new window
39.Schievano, A.、Pepè Sciarria, T.、Vanbroekhoven, K.、De Wever, H.、Puig, S.、Andersen, S. J.、Rabaey, K.、Pant, D.(2016)。Electro-Fermentation - Merging Electrochemistry with Fermentation in Industrial Applications。Trends Biotechnol,34(11),866-878。  new window
40.Tartakovsky, B.、Manuel, M.-F.、Neburchilov, V.、Wang, H.、Guiot, S.(2008)。Biocatalyzed hydrogen production in a continuous flow microbial fuel cell with a gas phase cathode。Journal of Power Sources,182(1),291-297。  new window
41.Thrash, J. C.、Coates, J. D.(2008)。Direct and indirect electrical stimulation of microbial metabolism。Environmental science & technology,42(11),3921-3931。  new window
42.Velvizhi, G.、Mohan, S. V.(2017)。Multi-electrode bioelectrochemical system for the treatment of high total dissolved solids bearing chemical based wastewater。Bioresource Technology,242,77-86。  new window
43.Watson, V. J.、Hatzell, M.、Logan, B. E.(2015)。Hydrogen production from continuous flow, microbial reverse-electrodialysis electrolysis cells treating fermentation wastewater。Bioresource Technology,195,51-56。  new window
44.Xafenias, N.、Anunobi, M. O.、Mapelli, V.(2015)。Electrochemical startup increases 1, 3-propanediol titers in mixed-culture glycerol fermentations。Process Biochemistry,50(10),1499-1508。  new window
45.Yang, H.-Y.、Wang, Y.-X.、He, C.-S.、Qin, Y.、Li, W.-Q.、Li, W.-H.、Mu, Y.(2020)。Redox mediator-modified biocathode enables highly efficient microbial electro-synthesis of methane from carbon dioxide。Applied Energy,274。  new window
46.Zhou, G.、Xu, X.、Qiu, X.、Zhang, J.(2019)。Biochar influences the succession of microbial communities and the metabolic functions during rice straw composting with pig manure。Bioresource Technology,272,10-18。  new window
47.Zhou, M.、Chen, J.、Freguia, S.、Rabaey, K.、Keller, J. R.(2013)。Carbon and electron fluxes during the electricity driven 1, 3-propanediol biosynthesis from glycerol。Environmental science & technology,47(19),11199-11205。  new window
圖書
1.Snyder, S. W.、Petersen, G.、Negri, C.、Ezeji, T.、Qureshi, N.、Magrini, K.、Datta, S.、Peretti, S.、Liang, Y.、Lin, Y.(2015)。Commercializing biobased products: Opportunities, challenges, benefits, and risks。Royal Society of Chemistry。  new window
 
 
 
 
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