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Effect of fermentation temperature on hydrogen production from xylose and the succession of hydrogen-producing microflora

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    • 바이오플라스틱
      1. 플라스틱
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      1. 용매
      2. 화학제품
      3. 연료
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      1. 계면활성제⁄증점제
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논문

Effect of fermentation temperature on hydrogen production from xylose and the succession of hydrogen-producing microflora

학술지

Journal of chemical technology and biotechnology

저자명

Qiu, Chunsheng; Yuan, Ping; Sun, Liping; Wang, Shaopo; Lo, Shanglien; Zhang, Dandan

초록

<P><B>Abstract</B></P><P><B>BACKGROUND</B></P><P>Hydrogen production through anaerobic dark fermentation is considered to be a potential biological process for xylose utilization. Temperature is one of the most important environmental factors, however, most studies have been carried out over a small temperature range. Batch tests were carried out to investigate the temperature effect on hydrogen production from xylose using a mixed culture over a wide temperature range (35&ndash;65&deg;C). Hydrogen production, metabolite distribution and dynamics of microbial communities were investigated.</P><P><B>RESULTS</B></P><P>Hydrogen&#8208;producing cultures were successfully enriched at each tested temperature. Two peaks of fermentation temperature for hydrogen production were observed at 35 and 55&deg;C (1.11 and 1.30 mol&#8208;H<SUB>2</SUB> mol<SUP>&minus;1</SUP>&#8208;xylose<SUB>consumed,</SUB> respectively). Butyrate and acetate were the major liquid metabolites at 35&ndash;60&deg;C. While at 65&deg;C the main by&#8208;product was ethanol. Polymerase chain reaction&#8208;denaturing gradient gel electrophoresis (PCR&#8208;DGGE) analysis indicated that <I>Clostridium</I> species were dominant at 35&ndash;40&deg;C, while <I>Thermoanaerobacterium</I> dominated at 45&ndash;60&deg;C. Both species were found at 65&deg;C, but with lowest microbial community diversity.</P><P><B>CONCLUSION</B></P><P>Hydrogen production efficiency was mainly affected by the liquid metabolite distributions, which depended mainly upon the temperature. Several microbial community structures were formed at mesophilic, transition, thermophilic and extreme&#8208;thermophilic conditions, resulting in different metabolic pathways of xylose and hydrogen production capacity. &copy; 2017 Society of Chemical Industry</P>

발행연도

2017

발행기관

John WileySons, Ltd

ISSN

0268-2575

ISSN

1097-4660

92

8

페이지

pp.1990-1997

주제어

biohydrogen; xylose; anaerobic digestion; mixed culture; microbial community

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논문; 2017-02-03

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