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基于不同类型碳纳米管的阳极以改善微生物燃料电池性能。

Different types of carbon nanotube-based anodes to improve microbial fuel cell performance.

机构信息

Department of Chemistry, Faculty of Science, Silpakorn University, Nakorn Pathom, Thailand 73000.

Science Research Centre, Hwa Chong Institution, 661 Bukit Timah Road, Singapore 269734.

出版信息

Water Sci Technol. 2014;69(9):1900-10. doi: 10.2166/wst.2014.102.

DOI:10.2166/wst.2014.102
PMID:24804666
Abstract

The microbial fuel cell (MFC) is an innovative technology for producing electricity directly from biodegradable organic matter using bacteria. Among all the influenceable factors, anode materials play a crucial role in electricity generation. Recently, carbon nanotubes (CNTs) have exhibited promising properties as electrode material due to their unique structural, and physical and chemical properties. In this study, the impacts of CNT types in CNT-based anodes were investigated to determine their effect on both efficiency of wastewater treatment and power generation. The CNTs, namely single-walled CNT with carboxyl group (SWCNT), multi-walled CNT with carboxyl group (MWCNT-COOH) and multi-walled CNT with hydroxyl group (MWCNT-OH) were used to fabricate CNT-based anodes by a filtration method. Overall, MWCNTs provided better results than SWCNTs, especially in the presence of the -OH groups. The highest power and treatment efficiencies in MFC were achieved with an anode made of MWCNT-OH filtered on Poreflon membrane; the open circuit voltage attained was 0.75 V and the maximum power density averaged 167 mW/m(2), which was 130% higher than that obtained with plain carbon cloth. In addition, MWCNT-OH is more cost-effective, further suggesting its potential to replace plain carbon cloth generally used for the MFC anode.

摘要

微生物燃料电池(MFC)是一种利用细菌直接从可生物降解的有机物中产生电能的创新技术。在所有可影响的因素中,阳极材料在发电方面起着至关重要的作用。最近,由于其独特的结构、物理和化学性质,碳纳米管(CNT)作为电极材料表现出了有前景的性能。在这项研究中,研究了 CNT 基阳极中 CNT 类型的影响,以确定它们对废水处理和发电效率的影响。使用具有羧基的单壁 CNT(SWCNT)、具有羧基的多壁 CNT(MWCNT-COOH)和具有羟基的多壁 CNT(MWCNT-OH)这 3 种 CNT 来通过过滤方法制备 CNT 基阳极。总的来说,MWCNTs 比 SWCNTs 提供了更好的结果,特别是在存在-OH 基团的情况下。在以 Poreflon 膜过滤的 MWCNT-OH 制成的阳极上,MFC 实现了最高的功率和处理效率;开路电压达到 0.75V,平均最大功率密度为 167mW/m2,比使用普通碳布获得的最大功率密度高 130%。此外,MWCNT-OH 更具成本效益,进一步表明其有潜力替代通常用于 MFC 阳极的普通碳布。

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