杨金辉

个人信息Personal Information

工程师

性别:男

毕业院校:大连理工大学

学位:硕士

所在单位:化学学院

电子邮箱:jhyang@dlut.edu.cn

扫描关注

论文成果

当前位置: 中文主页 >> 科学研究 >> 论文成果

Comparison of Co(II) reduction on three different cathodes of microbial electrolysis cells driven by Cu(II)-reduced microbial fuel cells under various cathode volume conditions

点击次数:

论文类型:期刊论文

发表时间:2015-04-15

发表刊物:CHEMICAL ENGINEERING JOURNAL

收录刊物:SCIE、EI、Scopus

卷号:266

页面范围:121-132

ISSN号:1385-8947

关键字:Microbial electrolysis cell; Microbial fuel cell; Cathode; Metal reduction

摘要:Reduction of aqueous Cu(II) and Co(II) is one critical step for simultaneous recovery of copper and cobalt, and recycle of spent lithium ion batteries, but suffers from consumption of large amount of energy and chemicals. Here we report Co(II)-reduced microbial electrolysis cells (MECCo) can be driven by Cu(ll)reduced microbial fuel cells (MFCCu) for simultaneous Cu(II) and Co(II) recovery with no external energy consumption, and system performance was heavily dependent on cathode material of MECo, and cathode volumes in both MECCo, and MFCCu. Either titanium sheet (TS) or stainless steel mesh (SSM) cathode achieved efficient Co(II) reduction whereas carbon rod (CR) cannot proceed this occurrence. While smaller cathode volumes in MFCa, led to appreciable Co(II) reduction (41.4 3.8%) on the CR cathode, the highest Co(II) reduction using TS (45.0 0.3%) or SSM (39.7 3.6%) was obtained under smaller cathode volumes in both MFCCu and MECCo. Moreover, when a mixed Cu(II) and Co(II) catholyte was deliberately used as the influent of MFCCu and the effluent of MKo was subsequently imported into the connected MECo, for tentatively simultaneous Cu(II) and Co(II) recovery from simulated mixed wastes, this so-called sequential MFCCu and MFCCu operation achieved Cu(II) reduction of 100% and Co(II) reduction of 65.3-72.0% using either TS or SSM cathodes. These results illustrate cathode material of MECo, and cathode volumes in both MECCo, and MFCCu, were critical for efficient Co(II) reduction in MEC, driven by MFCa, with achievements of simultaneous copper and cobalt recovery as well as no external energy consumption. 2014 Elsevier B.V. All rights reserved.