共查询到19条相似文献,搜索用时 52 毫秒
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氢是一种理想的清洁能源,生物制氢是在新能源的研究利用中占有日趋重要的位置。该文综述了国内外光合产氢和发酵产氢的机理、研究现状及存在的问题,并对其进一步发展进行了分析和展望。 相似文献
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厌氧发酵法生物制氢的研究现状和发展前景 总被引:5,自引:0,他引:5
卢文玉刘铭辉陈宇闻建平 《中国生物工程杂志》2006,26(7):99-104
氢气是一种理想的能源,具有转化率高、可再生和无污染等优点。与传统制氢方法相比,生物制氢技术的能耗低,对环境无害,其中的厌氧发酵生物制氢已经越来越受到人们的重视。本文主要介绍了厌氧发酵生物制氢技术的方法和机理,分析了生物制氢的可行性,结合国内外研究现状提出了未来的发展方向。 相似文献
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发酵生物制氢研究进展 总被引:16,自引:0,他引:16
综述了近年来发酵生物制氢领域的研究进展?在菌种方面,除了对现有产氢菌种的深入研究外,还采用生物学,分子生物学及生物信息学手段建立产氢菌种库;在氢酶的研究方面,已逐步从基因确定、功能研究拓展到基因工程构建高效产氢菌研究:而在与废弃生物质处理相结合的反应过程方面,研究主要集中在利用不同种类的废弃物的产氢和高效产氢反应器上。此外,还初步总结了目前对发酵制氢可行性和经济性的评价,并对其发展方向提出了新的看法。 相似文献
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氢作为一种清洁高效的可再生能源日益受到人们的重视。本文从微生物制氢的条件与代谢调控方面探讨了生物制氢的最新进展。目前常用产氢细菌进行了总结,分析了细菌的培养方式和工艺方法,探讨了影响生物制氢的各种因素(pH,温度,基质,离子浓度,反应器等)。在此基础之上,阐述了分子生物学技术在生物制氢中的应用及系统代谢调控。最后,对生物制氢今后的主要研究方向及前景进行了展望。 相似文献
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国际生物制氢相关研究的知识图谱分析 总被引:2,自引:0,他引:2
氢气是一种理想的洁净能源。生物制氢技术具有能耗低、环保等优势,是目前国内外研究的热点。从能源和环境角度考虑,发展生物制氢技术都具有重要的意义。通过ISI Web of Knowledge网络数据库检索2000~2008年8月期间生物制氢的相关研究,利用作者共引分析方法,并绘制了知识图谱。该图谱显示出此研究领域存在两大主流学术群体:群体1,其研究焦点为光解水制氢两大类,包括藻类光合制氢和蓝细菌等光合细胞制氢;群体2,其研究聚集在厌氧发酵制氢研究方面,又分为暗发酵制氢和光发酵制氢。其中厌氧发酵制氢的研究人员比较密集,说明这方面的研究是目前该领域的重点。 相似文献
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综述了利用衣藻生产氢气作为再生能源的研究进展。分别介绍了衣藻产氢的代谢机理、培养条件、衣藻氢化酶的特性以及利用分子生物学手段、生物信息学手段和生物工程技术提高衣藻生物制氢效率的方法,包括氢化酶的氧耐受性的改造、外源氢化酶基因的表达、影响衣藻产氢的关键基因的筛选、利用缺硫培养基和固定化培养方法提高氢气产量等。最后,还对利用衣藻生物制氢的可行性和经济性进行了分析,对其发展方向提出自己的看法。 相似文献
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Hydrogen (H2) is considered an alternative fuel of the future due to its high energy density and non-polluting nature. H2 energy provides many advantages over fossil fuels in that it is renewable, eco-friendly, and efficient. The global demand for H2 is increasing significantly; however, matching the supply of cost-competitive H2 to meet the current demand is a major technological barrier. H2 can be produced from lignocellulosic biomass and serve as a raw material for the synthesis of many industrially important chemicals. The use of thermophilic bacteria for biological production of H2 appears to be a promising alternative route to the current H2 production technologies. However, the carbon and H2 production metabolisms in most thermophilic bacteria have not yet been completely understood. This paper summarizes the recent research progress made toward understanding the carbon utilization for H2 production and developing gene manipulation techniques to enhance the H2 production capabilities in thermophilic bacteria. It reviews the current status, future directions and opportunities that thermophiles can offer to enable a cost-competitive and environmentally benign H2 production bioprocess. 相似文献
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De-Ping Wang 《Acta Botanica Sinica》2007,(9)
In this review,the author summarized the current status,challenges,and strategies in China in the development oftransgenic plants and its commercialization,Based on sets of successful examples and data achieved from execution ofthe National Special Project for Transgenic Plant Research and Commercialization in the last five years,the priorities andkey directions were put forward for the future development of transgenic plants in China. 相似文献
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Biological hydrogen (H2) production by dark and photo-fermentative organisms is a promising area of research for generating bioenergy. A large number of organisms have been widely studied for producing H2 from diverse feeds, both as pure and as mixed cultures. However, their H2 producing efficiencies have been found to vary (from 3 to 8 mol/mol hexose) with physiological conditions, type of organisms and composition of feed (starchy waste from sweet potato, wheat, cassava and algal biomass). The present review deals with the possibilities of enhancing H2 production by integrating metabolic pathways of different organisms-dark fermentative bacteria (from cattle dung, activated sludge, Caldicellulosiruptor, Clostridium, Enterobacter, Lactobacillus, and Vibrio) and photo-fermentative bacteria (such as Rhodobacter, Rhodobium and Rhodopseudomonas). The emphasis has been laid on systems which are driven by undefined dark-fermentative cultures in combination with pure photo-fermentative bacterial cultures using biowaste as feed. Such an integrative approach may prove suitable for commercial applications on a large scale. 相似文献
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Biological hydrogen (H2) production enhancement through the use of nanoparticles (NPs) supplement in the media is being recognized as a promising approach. The NPs, including those of metal and metal oxides have shown a significant improvement in the BHP. A number of organisms as pure or mixed cultures can produce H2 in presence of NPs from pure sugars and biowaste as a feed. However, their H2 production efficiencies have been found to vary significantly with the type of NPs and their concentration. In this review article, the potential role of NPs in the enhancement of H2 production has been assessed in dark- and photo-fermentative organisms using sugars and biowaste materials as feed. Further, the integrative approaches for commercial applications of NPs in BHP have been discussed. 相似文献
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