Li Yang

Associate Professor   Supervisor of Master's Candidates

Main positions:Assistant Professor

Gender:Female

Alma Mater:Dalian University of Technology

Degree:Doctoral Degree

School/Department:School of Ocean Science and Technology

Discipline:Environmental Engineering

Business Address:D06-309

Contact Information:liyang1989@dlut.edu.cn

E-Mail:liyang1989@dlut.edu.cn


Paper Publications

Potentially shifting from interspecies hydrogen transfer to direct interspecies electron transfer for syntrophic metabolism to resist acidic impact with conductive carbon cloth

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Indexed by:期刊论文

Date of Publication:2017-04-01

Journal:CHEMICAL ENGINEERING JOURNAL

Included Journals:SCIE、EI、ESI高被引论文、Scopus

Volume:313

Page Number:10-18

ISSN No.:1385-8947

Key Words:Direct interspecies electron transfer (DIET); Conductive carbon cloth; Syntrophic metabolism; Anaerobic methanogenesis; Acidic impact

Abstract:Anaerobic digesters usually become sour during the operation and inhibit methanogenesis. This effect occurs due to the interspecies electron exchange for the syntrophic metabolisrh of alcohols and volatile fatty acids (VFAs) via interspecies H-2 transfer (IHT). Conductive materials can promote direct interspecies electron transfer (DIET) between the syntrophs and methanogens, providing an alternative to IHT. However, the cooperative mechanism of these two working modes during syntrophic metabolism is unknown, especially during acidic impacts. The results of this study demonstrated that anaerobic digesters supplemented with conductive carbon cloth had a higher capacity to resist the acidic impacts. Conversely, the digesters supplemented with non-conductive cotton cloth (control) were nearly stagnant when the H2 partial pressure of the anaerobic systems increased. Further experiments at high H-2 partial pressure to inhibit IHT exhibited almost no effect on the syntrophic metabolism in the carbon cloth-supplemented group, in which the methane production approached the stoichiometric production (350 mL CH4/g COD removal), while the methane production in the control group ceased. The microbial community analysis revealed that the surface sludge attached to the carbon cloth had the highest abundance of Geobacter and Methanosaeata species known to participate in DIET. These results suggested that the predominant working mode for the interspecies electron exchange might have shifted from IHT to DIET in the presence of the conductive carbon cloth during acidic impacts. DIET primarily occurred on the surface sludge of the carbon cloth and replaced IHT to proceed the syntrophic metabolism and maintained stable anaerobic methanogenesis. (C) 2016 Elsevier B.V. All rights reserved.

Pre One:Towards engineering application: Potential mechanism for enhancing anaerobic digestion of complex organic waste with different types of conductive materials

Profile

副教授,硕士生指导教师。主要从事污染物的厌氧生物处理及资源化利用研究。2018年以来,作为项目负责人主持国家自然科学基金-青年基金项目1项,国家农业农村部重点研发计划项目子课题1项,教育部重点实验室开放基金项目1项,大连理工大学交叉探索课题1项;作为项目骨干参与“固废资源化”国家重大专项1项、辽宁省科技重大专项2项、国家自然科学基金-面上项目4项。目前,以第一作者或通讯作者身份在Environ Sci Technol、Water Res、J. Hazard Mater、Bioresour. Technol等SCI杂志上发表 JCR一区论文21篇,以其他作者身份参与发表SCI论文30余篇,授权5项中国发明专利, 1项国际发明专利。