| 1 |  SONAWANE J M, EZUGWU C I , GHOSH P C . Microbial fuel cell-based biological oxygen demand sensors for monitoring wastewater:State-of-the-art and practical applications[J]. ACS Sensors ,2020 ,5 (8):2297-2316. doi:10.1021/acssensors.0c01299 | 
																													
																						| 2 |  | 
																													
																						|  |  WANG Jianlong, ZHANG Yixin . Research advances in biosensor for rapid measurement of biochemical oxygen demand(BOD)[J]. Acta Scientiae Circumstantiae ,2007 ,27 (7):1066-1082. doi:10.3321/j.issn:0253-2468.2007.07.002 | 
																													
																						| 3 |  | 
																													
																						|  |  CUI Jiansheng, ZHANG Jing , WEI Fusheng . Development in biochemical oxygen demand determination[J]. Environmental Monitoring in China ,2006 ,22 (3):85-87. doi:10.3969/j.issn.1002-6002.2006.03.027 | 
																													
																						| 4 |  | 
																													
																						|  |  LI Guogang, WANG Delong . Review on determination methods of biological oxygen demand(BOD)[J]. Environmental Monitoring in China ,2004 ,20 (2):54-57. doi:10.3969/j.issn.1002-6002.2004.02.020 | 
																													
																						| 5 |  RATHEESH A, ELIAS L , ABOOBAKAR SHIBLI S M . Tuning of electrode surface for enhanced bacterial adhesion and reactions:A review on recent approaches[J]. ACS Applied Bio Materials ,2021 ,4 (8):5809-5838. doi:10.1021/acsabm.1c00362 | 
																													
																						| 6 |  | 
																													
																						|  |  | 
																													
																						| 7 |  | 
																													
																						|  |  YE Yucai, WANG Jianlong , PU Lifeng . Biosensors for rapid estimation of biochemical oxygen demand[J]. Chinese Journal of Analytical Chemistry ,2005 ,33 (3):405-410. doi:10.3321/j.issn:0253-3820.2005.03.029 | 
																													
																						| 8 |  RAUD M, TENNO T , JÕGI E ,et al. Comparative study of semi-specific Aeromonas hydrophila  and universal Pseudomonas fluorescens  biosensors for BOD measurements in meat industry wastewaters[J]. Enzyme and Microbial Technology ,2012 ,50 (4/5):221-226. doi:10.1016/j.enzmictec.2012.01.003 | 
																													
																						| 9 | 张静,吕雪飞,邓玉林. 基因工程微生物传感器及其应用研究进展[J]. 生命科学仪器,2019,17(1):11-16. | 
																													
																						|  |  ZHANG Jing,  Xuefei LÜ,  DENG Yulin. Application research of genetically engineered microbial biosensors[J]. Life Science Instruments,2019,17(1):11-16. | 
																													
																						| 10 | 张鹏. 电化学活性微生物胞外电子传递过程的强化及机制研究[D]. 哈尔滨:哈尔滨工业大学,2018. | 
																													
																						|  |  ZHANG Peng. Enhanced microbial extracellular electron transfer process of electrochemical active bacteria and mechanism analysis[D]. Harbin:Harbin Institute of Technology,2018. | 
																													
																						| 11 |  COMMAULT A S, LEAR G , BOUVIER S ,et al.  Geobacter -dominated biofilms used as amperometric BOD sensors[J]. Biochemical Engineering Journal ,2016 ,109 :88-95. doi:10.1016/j.bej.2016.01.011 | 
																													
																						| 12 |  SPURR M W A, YU E H , SCOTT K ,et al. Extending the dynamic range of biochemical oxygen demand sensing with multi-stage microbial fuel cells[J]. Environmental Science:Water Research & Technology ,2018 ,4 (12):2029-2040. doi:10.1039/c8ew00497h | 
																													
																						| 13 |  HSIEH M C, CHUNG Y C . Measurement of biochemical oxygen demand from different wastewater samples using a mediator-less microbial fuel cell biosensor[J]. Environmental Technology ,2014 ,35 (17):2204-2211. doi:10.1080/09593330.2014.898700 | 
																													
																						| 14 |  DO M H, NGO H H , GUO Wenshan ,et al. Performance of mediator-less double chamber microbial fuel cell-based biosensor for measuring biological chemical oxygen[J]. Journal of Environmental Management ,2020 ,276 :111279. doi:10.1016/j.jenvman.2020.111279 | 
																													
																						| 15 |  LIU Bingchuan, LEI Yu , LI Baikun . A batch-mode cube microbial fuel cell based “shock” biosensor for wastewater quality monitoring[J]. Biosensors and Bioelectronics ,2014 ,62 :308-314. doi:10.1016/j.bios.2014.06.051 | 
																													
																						| 16 |  LOGROÑO W, GUAMBO A , PÉREZ M ,et al. A terrestrial single chamber microbial fuel cell-based biosensor for biochemical oxygen demand of synthetic rice washed wastewater[J]. Sensors ,2016 ,16 (1):101. doi:10.3390/s16010101 | 
																													
																						| 17 |  XU Zhiheng, LIU Bingchuan , DONG Qiuchen ,et al. Flat microliter membrane-based microbial fuel cell as “on-line sticker sensor” for self-supported in situ monitoring of wastewater shocks[J]. Bioresource Technology ,2015 ,197 :244-251. doi:10.1016/j.biortech.2015.08.081 | 
																													
																						| 18 |  GAO Yangyang, YIN Fengjun , MA Weiqi ,et al. Rapid detection of biodegradable organic matter in polluted water with microbial fuel cell sensor:Method of partial coulombic yield[J]. Bioelectrochemistry ,2020 ,133 :107488. doi:10.1016/j.bioelechem.2020.107488 | 
																													
																						| 19 |  KIM M N, PARK K H . Immobilization of enzymes for Klebsiella  BOD sensor[J]. Sensors and Actuators B:Chemical ,2004 ,98 (1):1-4. doi:10.1016/j.snb.2003.07.001 | 
																													
																						| 20 | 温广明. Clark氧电极生物传感器的研究及分析应用[D]. 太原:山西大学,2008. | 
																													
																						|  |  WEN Guangming. Research and application of biosensor based on Clark oxygen electrode[D]. Taiyuan:Shanxi University,2008. | 
																													
																						| 21 | 范振英. Clark氧电极工作原理研究[C]//天津市生物医学工程学会第29届学术年会暨首届生物医学工程前沿科学研讨会论文集. 天津:天津市生物医学工程学会,2009:84. | 
																													
																						|  |  FAN Zhenying. Study on working principle of Clark oxygen electrode[C]//Proceedings of the 29th Annual Conference of Tianjin Biomedical Engineering Society and the First Frontier Science Symposium of Biomedical Engineering. Tianjin:Tianjin Biomedical Engineering Society,2009:84. | 
																													
																						| 22 | 李一锦,夏善红. BOD微生物传感器关键技术及其发展[J]. 传感器与微系统,2015,34(7):5-10. | 
																													
																						|  |  LI Yijin,  XIA Shanhong. Key techniques of BOD microbial sensor and its development[J]. Transducer and Microsystem Technologies,2015,34(7):5-10. | 
																													
																						| 23 |  | 
																													
																						|  |  HU Lei, LI Yi . Rapid determination of biochemical oxygen demand(BOD) in wastewater with ferrocene(Fc) grafted mediator microbial sensor[J]. Water Purification Technology ,2012 ,31 (3):49-53. doi:10.3969/j.issn.1009-0177.2012.03.012 | 
																													
																						| 24 |  HU Jingfang, LI Yueqi , GAO Guowei ,et al. A mediated BOD biosensor based on immobilized B.subtilis  on three-dimensional porous graphene-polypyrrole composite[J]. Sensors ,2017 ,17 (11):2594. doi:10.3390/s17112594 | 
																													
																						| 25 |  CHEN Dandan, CAO Yibin , LIU Baohong ,et al. A BOD biosensor based on a microorganism immobilized on an Al2 O3  sol-gel matrix[J]. Analytical and Bioanalytical Chemistry ,2002 ,372 (5/6):737-739. doi:10.1007/s00216-001-1214-6 | 
																													
																						| 26 |  LI Yourong, CHU Ju . Study of BOD microbial sensors for waste water treatment control[J]. Applied Biochemistry and Biotechnology ,1991 ,28 (1):855-863. doi:10.1007/bf02922655 | 
																													
																						| 27 |  KARA S, KESKINLER B , ERHAN E . A novel microbial BOD biosensor developed by the immobilization of P.syringae  in micro-cellular polymers[J]. Journal of Chemical Technology and Biotechnology ,2009 ,84 (4):511-518. doi:10.1002/jctb.2071 | 
																													
																						| 28 |  CHEE G J, NOMURA Y , IKEBUKURO K ,et al. Optical fiber biosensor for the determination of low biochemical oxygen demand[J]. Biosensors and Bioelectronics ,2000 ,15 (7/8):371-376. doi:10.1016/s0956-5663(00)00093-2 | 
																													
																						| 29 |  TROSOK S P, DRISCOLL B T , LUONG J H . Mediated microbial biosensor using a novel yeast strain for wastewater BOD measurement[J]. Applied Microbiology and Biotechnology ,2001 ,56 (3/4):550-554. doi:10.1007/s002530100674 | 
																													
																						| 30 |  SAKAGUCHI T, KITAGAWA K , ANDO T ,et al. A rapid BOD sensing system using luminescent recombinants of Escherichia coli  [J]. Biosensors and Bioelectronics ,2003 ,19 (2):115-121. doi:10.1016/s0956-5663(03)00170-2 | 
																													
																						| 31 |  LIN Ling, XIAO Lailong , HUANG Sha ,et al. Novel BOD optical fiber biosensor based on co-immobilized microorganisms in ormosils matrix[J]. Biosensors and Bioelectronics ,2006 ,21 (9):1703-1709. doi:10.1016/j.bios.2005.08.007 | 
																													
																						| 32 |  DAI Yuanjing, LIN Ling , LI Peiwei ,et al. Comparison of BOD optical fiber biosensors based on different microorganisms immobilized in ormosil matrixes[J]. International Journal of Environmental Analytical Chemistry ,2004 ,84 (8):607-617. doi:10.1080/03067310310001658302 | 
																													
																						| 33 |  YOSHIDA N, MCNIVEN S J , YOSHIDA A ,et al. A compact optical system for multi-determination of biochemical oxygen demand using disposable strips[J]. Field Analytical Chemistry & Technology ,2001 ,5 (5):222-227. doi:10.1002/fact.10001 | 
																													
																						| 34 |  SIMOSKA O, GAFFNEY E M , MINTEER S D ,et al. Recent trends and advances in microbial electrochemical sensing technologies:An overview[J]. Current Opinion in Electrochemistry ,2021 ,30 :100762. doi:10.1016/j.coelec.2021.100762 | 
																													
																						| 35 |  HU Jingfang,  GAO Guowei,  XIA Shanhong. Development of a mediator-type bioelectrochemical sensor based on polypyrrole immobilized ferricyanide and microorganisms for biochemical oxygen demand fast detection[J]. International Journal of Electrochemical Science,2015,10(11):9695-9705. | 
																													
																						| 36 |  HU Jingfang,  GAO Guowei,  XIA Shanhong. A mediated BOD microsensor based on poly(neutral red) and bacteria modified interdigited ultramicroelectrode array[J]. International Journal of Electrochemical Science,2016,11(7):6387-6402. | 
																													
																						| 37 |  YI Yue, XIE Beizhen , ZHAO Ting ,et al. Comparative analysis of microbial fuel cell based biosensors developed with a mixed culture and Shewanella loihica  PV-4 and underlying biological mechanism[J]. Bioresource Technology ,2018 ,265 :415-421. doi:10.1016/j.biortech.2018.06.037 | 
																													
																						| 38 |  RASTOGI S, KUMAR A , MEHRA N K ,et al. Development and characterization of a novel immobilized microbial membrane for rapid determination of biochemical oxygen demand load in industrial waste-waters[J]. Biosensors and Bioelectronics ,2003 ,18 (1):23-29. doi:10.1016/s0956-5663(02)00108-2 | 
																													
																						| 39 |  ARLYAPOV V A, YUDINA N Y , MACHULIN A V ,et al. A biosensor on the basis of microorganisms immobilized in layer-by-layer films for determination of biochemical oxygen demand[J]. Applied Biochemistry and Microbiology ,2021 ,57 (1):95-104. doi:10.1134/s0003683821010038 | 
																													
																						| 40 |  YI Yue, ZHAO Ting , XIE Beizhen ,et al. Dual detection of biochemical oxygen demand and nitrate in water based on bidirectional Shewanella loihica  electron transfer[J]. Bioresource Technology ,2020 ,309 :123402. doi:10.1016/j.biortech.2020.123402 | 
																													
																						| 41 |  Huan LÜ, YANG Qian , CHEN Yiliang ,et al. Determination of seawater biochemical oxygen demand based on in situ cultured biofilm reactor[J]. Journal of Electroanalytical Chemistry ,2021 ,903 :115872. doi:10.1016/j.jelechem.2021.115872 | 
																													
																						| 42 |  YUAN Pengyi, KIM Y . Accurate and rapid organic detection by eliminating hysteresis in bioanode sensor applications[J]. Environmental Science:Water Research & Technology ,2017 ,3 (5):905-910. doi:10.1039/c7ew00115k | 
																													
																						| 43 |  DO M H, NGO H H , GUO Wenshan ,et al. Performance of mediator-less double chamber microbial fuel cell-based biosensor for measuring biological chemical oxygen[J]. Journal of Environmental Management ,2020 ,276 :111279. doi:10.1016/j.jenvman.2020.111279 | 
																													
																						| 44 | 田帅,张盼月,梁英梅,等. 双室微生物燃料电池型BOD传感器性能[J]. 环境工程学报,2014,8(6):2626-2632. | 
																													
																						|  |  TIAN Shuai,  ZHANG Panyue,  LIANG Yingmei,et al. Performances of double-chamber microbial fuel cell-based BOD sensor[J]. Chinese Journal of Environmental Engineering,2014,8(6):2626-2632. | 
																													
																						| 45 |  DI LORENZO M, CURTIS T P , HEAD I M ,et al. A single-chamber microbial fuel cell as a biosensor for wastewaters[J]. Water Research ,2009 ,43 (13):3145-3154. doi:10.1016/j.watres.2009.01.005 | 
																													
																						| 46 |  | 
																													
																						|  |  WU Feng, LIU Zhi , ZHOU Shungui ,et al. Development of a low-cost single chamber microbial fuel cell type BOD sensor[J]. Environmental Science ,2009 ,30 (10):3099-3103. doi:10.3321/j.issn:0250-3301.2009.10.048 | 
																													
																						| 47 |  KARUBE I, MATSUNAGA T , MITSUDA S ,et al. Microbial electrode BOD sensors(Reprinted from Biotechnology and Bioengineering,vol XIX,pg 1535-1547,1977)[J]. Biotechnology and Bioengineering ,2009 ,102 (3):660-672. doi:10.1002/bit.22232 | 
																													
																						| 48 |  STIRLING J L, BENNETTO H P , DELANEY G M ,et al. Microbial fuel cells[J]. Biochemical Society Transactions ,1983 ,11 (4):451-453. doi:10.1042/bst0110451 | 
																													
																						| 49 | 田帅. 微生物燃料电池型BOD传感器研究[D]. 北京:北京林业大学,2013. | 
																													
																						|  |  TIAN Shuai. Study on microbial fuel cell-based BOD biosensor[D]. Beijing:Beijing Forestry University,2013. | 
																													
																						| 50 | 蒋海明,李潇萍,罗生军,等. 基于微生物燃料电池技术的生物传感器及其应用进展[J]. 中南大学学报:自然科学版,2010,41(6):2451-2458. | 
																													
																						|  |  JIANG Haiming,  LI Xiaoping,  LUO Shengjun,et al. Biosensors based on microbial fuel cell technology and their application[J]. Journal of Central South University:Science and Technology,2010,41(6):2451-2458. | 
																													
																						| 51 |  KIM H J, PARK H S , HYUN M S ,et al. A mediator-less microbial fuel cell using a metal reducing bacterium,Shewanella putrefaciens  [J]. Enzyme and Microbial Technology ,2002 ,30 (2):145-152. doi:10.1016/s0141-0229(01)00478-1 | 
																													
																						| 52 |  KANG K H, JANG J K , PHAM T H ,et al. A microbial fuel cell with improved cathode reaction as a low biochemical oxygen demand sensor[J]. Biotechnology Letters ,2003 ,25 (16):1357-1361. doi:10.1023/a:1024984521699 | 
																													
																						| 53 | 王梅玉. 基于活性炭空气阴极的MFC型低成本BOD传感器的研究[D]. 天津:天津大学,2016. | 
																													
																						|  |  WANG Meiyu. Study on low cost BOD sensors basing on activated carbon-air cathode microbial fuel cell[D]. Tianjin:Tianjin University,2016. | 
																													
																						| 54 | 蒋永. 基于微生物电化学技术的水质预警系统研究[D]. 北京:清华大学,2018. | 
																													
																						|  |  JIANG Yong. Study on microbial electrochemical technology for water alert system[D]. Beijing:Tsinghua University,2018. | 
																													
																						| 55 |  AYYARU S, DHARMALINGAM S . Enhanced response of microbial fuel cell using sulfonated poly ether ether ketone membrane as a biochemical oxygen demand sensor[J]. Analytica Chimica Acta ,2014 ,818 :15-22. doi:10.1016/j.aca.2014.01.059 | 
																													
																						| 56 |  MODIN O, WILÉN B M . A novel bioelectrochemical BOD sensor operating with voltage input[J]. Water Research ,2012 ,46 (18):6113-6120. doi:10.1016/j.watres.2012.08.042 | 
																													
																						| 57 |  PEIXOTO L, MIN B , MARTINS G ,et al. In situ microbial fuel cell-based biosensor for organic carbon[J]. Bioelectrochemistry ,2011 ,81 (2):99-103. doi:10.1016/j.bioelechem.2011.02.002 | 
																													
																						| 58 |  FAN Yanzhen, HU Hongqiang , LIU Hong . Enhanced Coulombic efficiency and power density of air-cathode microbial fuel cells with an improved cell configuration[J]. Journal of Power Sources ,2007 ,171 (2):348-354. doi:10.1016/j.jpowsour.2007.06.220 | 
																													
																						| 59 |  DI LORENZO M, CURTIS T P , HEAD I M ,et al. A single chamber packed bed microbial fuel cell biosensor for measuring organic content of wastewater[J]. Water Science and Technology ,2009 ,60 (11):2879-2887. doi:10.2166/wst.2009.699 | 
																													
																						| 60 |  TARDY G M, LÓRÁNT B , GYALAI-KORPOS M ,et al. Microbial fuel cell biosensor for the determination of biochemical oxygen demand of wastewater samples containing readily and slowly biodegradable organics[J]. Biotechnology Letters ,2021 ,43 (2):445-454. doi:10.1007/s10529-020-03050-5 | 
																													
																						| 61 |  MOON H, CHANG I S , KANG K H ,et al. Improving the dynamic response of a mediator-less microbial fuel cell as a biochemical oxygen demand(BOD) sensor[J]. Biotechnology Letters ,2004 ,26 (22):1717-1721. doi:10.1007/s10529-004-3743-5 | 
																													
																						| 62 |  TRONT J M, FORTNER J D , PLÖTZE M ,et al. Microbial fuel cell biosensor for in situ assessment of microbial activity[J]. Biosensors and Bioelectronics ,2008 ,24 (4):586-590. doi:10.1016/j.bios.2008.06.006 | 
																													
																						| 63 |  CHANG I S, MOON H , JANG J K ,et al. Improvement of a microbial fuel cell performance as a BOD sensor using respiratory inhibitors[J]. Biosensors and Bioelectronics ,2005 ,20 (9):1856-1859. doi:10.1016/j.bios.2004.06.003 | 
																													
																						| 64 |  SHEN Yujia, WANG Meng , CHANG I S ,et al. Effect of shear rate on the response of microbial fuel cell toxicity sensor to Cu(Ⅱ)[J]. Bioresource Technology ,2013 ,136 :707-710. doi:10.1016/j.biortech.2013.02.069 | 
																													
																						| 65 |  JIANG Yong, LIANG Peng , ZHANG Changyong ,et al. Enhancing the response of microbial fuel cell based toxicity sensors to Cu(Ⅱ) with the applying of flow-through electrodes and controlled anode potentials[J]. Bioresource Technology ,2015 ,190 :367-372. doi:10.1016/j.biortech.2015.04.127 | 
																													
																						| 66 |  SPURR M W, YU E H , SCOTT K ,et al. No re-calibration required? Stability of a bioelectrochemical sensor for biodegradable organic matter over 800 days[J]. Biosensors and Bioelectronics ,2021 ,190 :113392. doi:10.1016/j.bios.2021.113392 | 
																													
																						| 67 |  CHENG Shaoan, LIU Hong , LOGAN B E . Increased power generation in a continuous flow MFC with advective flow through the porous anode and reduced electrode spacing[J]. Environmental Science & Technology ,2006 ,40 (7):2426-2432. doi:10.1021/es051652w | 
																													
																						| 68 |  XIAO Nan, WANG Bing , HUANG J J . Hydrodynamic optimization for design and operating parameters of an innovative continuous-flow miniaturized MFC biosensor[J]. Chemical Engineering Science ,2021 ,235 :116505. doi:10.1016/j.ces.2021.116505 | 
																													
																						| 69 |  ELMEKAWY A, HEGAB H M , DOMINGUEZ-BENETTON X ,et al. Internal resistance of microfluidic microbial fuel cell:Challenges and potential opportunities[J]. Bioresource Technology ,2013 ,142 :672-682. doi:10.1016/j.biortech.2013.05.061 | 
																													
																						| 70 |  XIAO Nan, WU Rong , HUANG J J ,et al. Development of a xurographically fabricated miniaturized low-cost,high-performance microbial fuel cell and its application for sensing biological oxygen demand[J]. Sensors and Actuators B:Chemical ,2020 ,304 :127432. doi:10.1016/j.snb.2019.127432 | 
																													
																						| 71 |  ABREVAYA X C, SACCO N J , BONETTO M C ,et al. Analytical applications of microbial fuel cells. Part Ⅱ:Toxicity,microbial activity and quantification,single analyte detection and other uses[J]. Biosensors & Bioelectronics ,2015 ,63 :591-601. doi:10.1016/j.bios.2014.04.053 | 
																													
																						| 72 |  QI Xiang, WANG Shuyi , LI Tian ,et al. An electroactive biofilm-based biosensor for water safety:Pollutants detection and early-warning[J]. Biosensors and Bioelectronics ,2021 ,173 :112822. doi:10.1016/j.bios.2020.112822 | 
																													
																						| 73 |  YANG Yang, YE Dingding , LI Jun ,et al. Microfluidic microbial fuel cells:From membrane to membrane free[J]. Journal of Power Sources ,2016 ,324 :113-125. doi:10.1016/j.jpowsour.2016.05.078 | 
																													
																						| 74 |  LEE H, YANG W , WEI X ,et al. A microsized microbial fuel cell based biosensor for fast and sensitive detection of toxic substances in water[C]//2015 28th IEEE International Conference on Micro Electro Mechanical Systems(MEMS). Estoril:IEEE,2015 :573-576. doi:10.1109/memsys.2015.7051020 | 
																													
																						| 75 |  AELTERMAN P, VERSICHELE M , MARZORATI M ,et al. Loading rate and external resistance control the electricity generation of microbial fuel cells with different three-dimensional anodes[J]. Bioresource Technology ,2008 ,99 (18):8895-8902. doi:10.1016/j.biortech.2008.04.061 | 
																													
																						| 76 |  CHAUDHURI S K, LOVLEY D R . Electricity generation by direct oxidation of glucose in mediatorless microbial fuel cells[J]. Nature Biotechnology ,2003 ,21 (10):1229-1232. doi:10.1038/nbt867 | 
																													
																						| 77 |  LOGAN B, CHENG Shaoan , WATSON V ,et al. Graphite fiber brush anodes for increased power production in air-cathode microbial fuel cells[J]. Environmental Science & Technology ,2007 ,41 (9):3341-3346. doi:10.1021/es062644y | 
																													
																						| 78 |  RABAEY I, OSSIEUR W , VERHAEGE M ,et al. Continuous microbial fuel cells convert carbohydrates to electricity[J]. Water Science and Technology ,2005 ,52 (1/2):515-523. doi:10.2166/wst.2005.0561 | 
																													
																						| 79 |  NGOC L T B, TU T A , HIEN L T T ,et al. Simple approach for the rapid estimation of BOD5  in food processing wastewater[J]. Environmental Science and Pollution Research International ,2020 ,27 (16):20554-20564. doi:10.1007/s11356-020-08703-6 | 
																													
																						| 80 |  PHAM T H, AELTERMAN P , VERSTRAETE W . Bioanode performance in bioelectrochemical systems:Recent improvements and prospects[J]. Trends in Biotechnology ,2009 ,27 (3):168-178. doi:10.1016/j.tibtech.2008.11.005 | 
																													
																						| 81 |  PARK D H, ZEIKUS J G . Impact of electrode composition on electricity generation in a single-compartment fuel cell using Shewanella putrefaciens  [J]. Applied Microbiology and Biotechnology ,2002 ,59 (1):58-61. doi:10.1007/s00253-002-0972-1 | 
																													
																						| 82 |  ROSENBAUM M, ZHAO Feng , SCHRÖDER U ,et al. Interfacing electrocatalysis and biocatalysis with tungsten carbide:A high-performance,noble-metal-free microbial fuel cell[J]. Angewandte Chemie:International Edition ,2006 ,45 (40):6658-6661. doi:10.1002/anie.200602021 | 
																													
																						| 83 |  ZHANG Tian, CUI Changzheng , CHEN Shengli ,et al. A novel mediatorless microbial fuel cell based on direct biocatalysis of Escherichia coli  [J]. Chemical Communications ,2006 (21):2257-2259. doi:10.1039/b600876c | 
																													
																						| 84 |  CHENG Shaoan, LOGAN B E . Ammonia treatment of carbon cloth anodes to enhance power generation of microbial fuel cells[J]. Electrochemistry Communications ,2007 ,9 (3):492-496. doi:10.1016/j.elecom.2006.10.023 | 
																													
																						| 85 |  ZAWADZKI D, PĘDZIWIATR P , MICHALSKA K . A novel microbial fuel cell with exchangeable membrane:Application of additive manufacturing technology for device fabrication[J]. Acta Innovations ,2018 (28):20-31. doi:10.32933/actainnovations.28.3 | 
																													
																						| 86 |  FRAIWAN A, LEE H , CHOI S . A multianode paper-based microbial fuel cell:A potential power source for disposable biosensors[J]. IEEE Sensors Journal ,2014 ,14 (10):3385-3390. doi:10.1109/jsen.2014.2332075 | 
																													
																						| 87 |  WARDMAN C D, NEVIN K P , LOVLEY D R . SMART(subsurface microbial activity in real time) technology for real-time monitoring of microbial metabolism in anaerobic soils and sediments[C]//Abstracts of the General Meeting of the American Society for Microbiology. Boston:114th General Meeting of the American-Society-for-Microbiology,2014 :404. doi:10.3389/fmicb.2014.00621 | 
																													
																						| 88 |  | 
																													
																						|  |  ZHENG Jin’ge, NIU Shasha , WANG Pengpeng ,et al. Summary of structure and functional characteristics of microbial fuel cell reactor[J]. Industrial Water Treatment ,2019 ,39 (7):4-9. doi:10.11894/iwt.2018-0785 |