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1.
微生物燃料电池   总被引:2,自引:0,他引:2  
刘宏芳  郑碧娟 《化学进展》2009,21(6):1349-1355
微生物燃料电池 (Microbial Fuel Cells,MFCs) 是一种利用微生物作为催化剂,将燃料中的化学能直接转化为电能的装置。本文首先简要介绍了MFCs 的发展简史和基本原理,针对MFCs 产电性能低的现状,分别从产电微生物、电池结构、质子交换膜(PEM)、电极以及电解液等方面着重综述了近几年有关提高MFCs 产电性能的研究进展。最后介绍了关于MFCs 的另一些有趣的研究方向:植物MFCs,生物阴极MFCs,以及污水脱氮和有毒废水处理。  相似文献   

2.
微生物燃料电池生物阴极   总被引:1,自引:0,他引:1  
陈立香  肖勇  赵峰 《化学进展》2012,24(1):157-162
微生物燃料电池(microbial fuel cells, MFCs)利用微生物处理废水的同时产电,是一种清洁可再生能源技术。近年来新兴起的生物阴极是指阴极室中的功能微生物附着在电极表面形成生物膜,电子由电极传递给微生物并发生相应的生物电化学反应;是微生物燃料电池研究的一个重要方向。本文根据厌氧、好氧操作体系的不同将生物阴极进行分类;归纳总结了微生物组成、电极和分隔材料的研究进展,探讨了生物阴极在去除污染物和生成高附加值产品中的实际应用,并提出了其将来发展的可能方向。  相似文献   

3.
梁方圆  邓欢  赵峰 《分析化学》2013,41(8):1133-1139
微生物燃料电池(Microbial fuel cells,MFCs)是一种有前景的去除废水中硫污染物的技术。本文在生物膜电极反应机理的基础上,讨论电极反应和微生物在MFCs处理硫污染物过程中的作用,论证了其处理机制和影响因素,总结了反应器构型、分离器类型、电极材料和催化剂,以及硫的回收和电极再生。此外,通过核算对比MFCs和典型的厌氧生物技术处理含硫废水的成本和收益对MFCs去除废水中硫污染物的可行性进行了评估。  相似文献   

4.
构建了一个以曝气池污泥为阳极接种微生物、碳毡为阳极、无任何修饰的不锈钢网为阴极的双室微生物燃料电池. 通过输出电压、功率密度以及电化学阻抗等考察了阴极面积对电池产电性能的影响,并对电池的长期运行稳定性进行评价. 研究结果表明,不锈钢网作为微生物燃料电池的阴极性能稳定. 当不锈钢网面积为2 × 2 cm2时,最大输出电压达到0.411 V,功率密度为0.303 W•m-2,内阻841 Ω,极化内阻80 Ω. 增大阴极面积至2 × 4 cm2,最大输出电压能达到0.499 V,内阻减小至793 Ω. 不锈钢网价格便宜,具有长期运行稳定性,适宜做MFCs的阴极.  相似文献   

5.
微生物燃料电池(Microbial fuel cells, MFCs)可将废水中的有机物直接转化为电能,提供了可持续电能的潜在解决方案。然而,MFCs在实际应用中存在细菌负载能力低、阳极与电化学活性生物膜之间的胞外电子传递(Extracellular electron transfer, EET)效率相对较差等不足。本研究采用绿色高效的微波辅助方法和高温退火工艺,成功制备了铁基纳米粒子改性碳布(Fe3C/Fe@CC),此复合材料具有较好的生物相容性和电催化活性,可作为MFCs的阳极材料。实验结果表明,基于Fe3C/Fe@CC复合材料的MFCs的功率密度高达2209 mW/m2,相比基于纯碳布阳极的MFCs(1933 mW/m2)提高了17%,这主要是因为Fe3C/Fe@CC能够有效提高微生物与电极之间的EET效率,增大电化学活性表面积,同时促进产电菌地杆菌(Geobacter)的富集。本研究采用微波辅助和高温退火方法快速制备了高导电复合阳极,为MFCs阳极的大规模制备提供了一种...  相似文献   

6.
利用爆炸法低温合成了氮掺杂石墨烯(NG),并通过高分辨透射电子显微镜、X射线光电子能谱仪、Raman光谱仪以及X射线衍射仪对其进行了表征.电化学性能检测结果表明,所合成的NG在中性磷酸盐电解液中具有优异的氧还原催化活性,完全能够与贵重金属铂催化剂(Pt/C)相媲美,氧还原催化稳定性甚至优于Pt/C.当NG用作微生物燃料电池(MFCs)的阴极氧还原催化剂时,在外阻为1000Ω情况下,MFCs的最大功率密度为1345 mW/m2,产电稳定性优于以Pt/C为阴极催化剂的MFCs,可以成为Pt催化剂的理想替代品.  相似文献   

7.
用于生物电化学系统的石墨烯电极新进展   总被引:1,自引:0,他引:1  
可持续社会的发展需要成本低, 并从废物或废水中提取能源或将能源转化为产品的环境友好技术. 近年兴起的生物电化学系统(BESs)利用微生物催化不同电化学反应, 是将废物或废水中能量转化为电能等多种产品的发展前景广阔的新技术. 当有关反应的吉布斯自由能小于零, 系统输出电能, 此时的BESs即为微生物燃料电池(MFCs); 相反, 若反应的吉布斯自由能为正值, 此时的BESs被称为微生物电解电池(MECs). 随着研究工作的不断深入和拓展, BESs的电极性能已成为制约其应用的瓶颈. 石墨烯以其独特的结构和优异的材料性能在BESs领域, 特别是MFCs中得以应用. 本文参考了最新的文献资料, 综述了石墨烯应用于BESs的发展现状, 包括应用于MFCs的石墨烯电极、掺杂石墨烯电极、担载石墨烯电极, 对其在MECs中可能的应用, 以及未来发展趋势予以展望.  相似文献   

8.
以不同载量的MnO_2/rGO和Pt/C修饰阴极电极构建了生物阴极型双室微生物燃料电池(MFC),考察了不同阴极催化剂修饰MFC对其产电性能以及老龄垃圾渗滤液主要污染物去除效果的影响。结果表明,以MnO_2/rGO修饰MFC阴极电极材料,能显著提高MFC产电性能及对老龄垃圾渗滤液中污染物去除效果;输出电压为372 mV,功率密度为194 mW/m~3(是未经催化剂修饰MFC的两倍),内阻为264Ω,化学需氧量(COD)和氨氮(NH_3-N)去除率分别为58.68%和76.64%。当MnO_2/rGO载量为.0 mg/cm~2时,MFC性能与负载Pt/C的MFC性能接近,但构建成本却明显降低。  相似文献   

9.
综述了国内外应用生物多糖进行医用高分子材料表面修饰的研究状况,其中重点介绍了葡聚糖、肝素及类肝素类物质、壳聚糖等多糖在高分子材料表面修饰的研究近况.多糖是自然界中含量最为丰富的生物大分子,几乎存在于所有的生命体中,具有很好的生物相容性,而且某些生物多糖还具有特殊的生物活性,因此用生物多糖进行医用高分子材料的表面修饰受到了国内外研究学者的关注.大量研究表明,经过生物多糖表面修饰的高分子材料可获得良好的生物相容性和某些优良的医学应用性能.  相似文献   

10.
张瑞  吴云  王鲁天  吴强  张宏伟 《化学进展》2020,32(12):2013-2021
微生物燃料电池(MFC)阴极电子受体的多样性可实现其阴极脱氮,从而将产生的电能合理利用,因此阴极脱氮成为了MFC的一个研究方向,同时也为实际废水中氮素的去除提供了新的可能。然而在反应过程中有众多因素会导致NOx-N与其他电子受体竞争阳极电子的现象,影响阴极反硝化过程对于电子的利用率,从而造成脱氮效率低等现实问题。目前已有许多研究通过优化MFC自身结构弥补产电的缺陷,及将与其他工艺系统耦合实现同步硝化反硝化等方法,取长补短以增加脱氮效率,降低对碳源的需求,以此解决微生物燃料电池阴极脱氮出现的问题。本文从MFC不同的脱氮历程、MFC工艺条件(pH、C/N、DO)、极室分隔材料等影响MFC阴极脱氮的因素及影响其阴极反硝化微生物群落构成等方面,进行了综述并预测未来研究方向。  相似文献   

11.
For the purpose of reducing the cost and improving the performance of cathodes in microbial fuel cells (MFCs), we prepared Pt/C and Pt-M/C (M = Ni, Co, Fe) electrodes, and characterized them by SEM, XRD and CV. The modified electrodes were used as the cathodes in double-chambered MFCs fed with synthetic medium and molasses sewage respectively. We have found that Pt-M/C catalysts had a better catalytic activity for oxygen reduction than Pt/C in the following order: Pt-Fe/C > Pt-Co/C > Pt-Ni/C > Pt/C. The maximum power density of the MFCs with Pt-M/C cathode was improved by 18–31% compared with the MFC with Pt/C cathode because of the decrease of activation loss in the cathode. This study shows that Pt-M/C catalysts can improve power generation of MFCs without affecting the COD removal and it is proposed that Pt-Fe functions best among the three Pt-M alloys as an efficient and cost-effective catalyst of MFCs.  相似文献   

12.
High-performance microbial fuel cell (MFC) air cathodes were constructed using a combination of inexpensive materials for the oxygen reduction cathode catalyst and the electrode separator. A poly(vinyl alcohol) (PVA)-based electrode separator enabled high coulombic efficiencies (CEs) in MFCs with activated carbon (AC) cathodes without significantly decreasing power output. MFCs with AC cathodes and PVA separators had CEs (43%–89%) about twice those of AC cathodes lacking a separator (17%–55%) or cathodes made with platinum supported on carbon catalyst (Pt/C) and carbon cloth (CE of 20%–50%). Similar maximum power densities were observed for AC-cathode MFCs with (840 ± 42 mW/m2) or without (860 ± 10 mW/m2) the PVA separator after 18 cycles (36 days). Compared to MFCs with Pt-based cathodes, the cost of the AC-based cathodes with PVA separators was substantially reduced. These results demonstrated that AC-based cathodes with PVA separators are an inexpensive alternative to expensive Pt-based cathodes for construction of larger-scale MFC reactors.  相似文献   

13.
Since the microbial fuel cells (MFCs) research in the laboratory has reached an unprecedented success, it has raised a research upsurge internationally in recent years. However, compared with laboratory studies, the widespread applications of the conventional MFCs were restrained by the limitations of high cost and low efficiency. This stimulates researchers to overcome the obstacles. In this condition, bio-cathodes attracted their great interests. This paper is a brief review about the experimental progress of bio-cathodes in microbial fuel cells with an emphasis on the classification according to the final electron acceptors and the comparison with the traditional abiotic cathode MFCs. Bio-cathodes are feasible in removing nutrient in wastewater treatment and being used as biosensors in bioremediation. Presently, tremendous efforts are being made in investigating appropriate electrodes and dominant strains to achieve the effective practical applications.  相似文献   

14.
王成显  于飞  马杰 《物理化学学报》2016,32(10):2411-2426
微生物燃料电池(MFC)是利用生物催化剂将污水有机物中的化学能直接转化为电能的技术,因其功率密度和能量转化效率低,电极制作成本高,限制了其大规模实际应用。因此如何提高电极的催化性能并降低电极制作成本成为MFC的研究重点方向。由于石墨烯基杂化材料具有良好的导电性和催化特性,因此石墨烯基杂化材料成为在MFC电极应用中的热点之一。本文综述了近年来MFC石墨烯基杂化电极材料的最新研究进展,重点讨论了改性石墨烯电极、金属及非金属/石墨烯杂化电极、金属氧化物/石墨烯杂化电极、聚合物/石墨烯杂化电极和石墨烯凝胶电极的设计思路和制备方法及其催化性能,着重分析了石墨烯基阳极和阴极杂化材料对MFC产电性能的影响。最后对石墨烯基杂化材料在MFC应用中存在的问题及研究前景进行了总结和展望。  相似文献   

15.
《Electroanalysis》2017,29(3):652-661
The modifications of electrodes using graphene and graphene composites in microbial fuel cells (MFCs) and microbial electrolysis cells (MECs) have been widely applied for enhancing the electrochemical catalytic activity and performance of MFCs and MECs. Graphene as one of advanced materials has shown outstanding features for promoting practical applications of MFCs. This review summarizes the modification methods and characterization methods of graphene and related graphene composites on electrode surfaces in MFCs and MECs. The performance improvements of MFCs and MECs by various graphene related composites have been reviewed, which will provide an efficient guide for selecting suitable graphene material to modify electrodes in MFCs and MECs for improving their performance.  相似文献   

16.
Literature sources of the last 15 years were analyzed and the results were considered for the studies carried out in one of the directions of hydrogen power engineering of the most current interest: development of portable low-power fuel cells (microfuel cells, MFCs). MFCs with high power density and high efficiency are used as a basis for a new generation of power sources for various stand-alone electronic devices. The latest silicon micro- and nanotechnologies are considered, same as the technologies for obtaining nanostructured catalysts and problems regarding development of MFCs with the power of 0.5–20 W, methods of catalytic layers application in MFCs, choice of fuel, and methods of supplying it into MFCs, and MFC water managemen and temperature control. Special attention was paid to borohydride MFCs, combined (hybrid) systems, and MFCs with a mixed reagent. The results of electrochemical tests of MFC layouts are presented.  相似文献   

17.
As the consequences of global warming continue to affect the climate, there is an increased need for technologies that decrease dependence on fossil fuel consumption and promote sustainability. Additive manufacturing (AM) not only enables the scale-up and mass production of renewable energy technologies but also reduces cost and lead time, minimizes waste, and uses less energy than traditional manufacturing processes. Moreover, AM brings design and innovation to the forefront by allowing for design strategy revision and rapid prototyping. Herein, AM approaches used to fabricate devices that enable biological power generation are described. Biological power generation is a process through which biocatalysts – electroactive bacteria, enzymes, or cyanobacteria – harvest electrons from chemical substrates or light. Device engineering directs electron transfer events to a conductive material and maximizes power output. This review covers recent AM approaches for biological power generation in the form of microbial fuel cells (MFCs), enzymatic fuel cells, and biophotovoltaic cells with an emphasis on MFCs. Fabrication methods and materials for electrodes, chambers, inserts, membranes, and biofilms are described, along with impacts on device performance.  相似文献   

18.
微生物燃料电池电极材料研究进展   总被引:1,自引:0,他引:1  
次素琴  吴娜  温珍海  李景虹 《电化学》2012,18(3):243-251
微生物燃料电池以微生物为催化剂将化学能直接转化成电能,可用于废水处理并产生电能,是一种极具应用前景的生物电化学技术. 本文综述了近年来微生物燃料电池电极材料的制备、功能修饰及表面构建等的研究进展,着重介绍了炭基纳米材料的微结构与成分对微生物燃料电池性能的影响,并分析了微生物燃料电池电极材料现存的主要问题,以期不久的将来微生物燃料电池能付之实用.  相似文献   

19.
阳极电势对Geobacter sulfurreducens产电性能的影响   总被引:1,自引:0,他引:1  
以产电模式菌Geobacter sulfurreducens为研究对象接种两瓶型微生物燃料电池(MFC)阳极室, 利用恒电位仪控制阳极电势, 考察了7种电势条件下MFC的启动期、最大功率密度和阳极生物量的变化情况. 研究结果表明, 当阳极电势为-250, -100和50 mV(vs. SCE)时, MFC启动较快, CV曲线和极化曲线表明, 在这3种电势条件下, MFC产电性能增强, 其中阳极电势为-100 mV时, MFC最大功率密度为1.67 W/m3, 比固定外阻条件下启动的MFC最大功率密度提高了5倍. 控制合适的阳极电势可以使阳极生物量提高2.5~3倍.  相似文献   

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