School of Chemistry and Chemical Engineering, Guangzhou Key Laboratory for Clean Energy and Materials, Guangzhou University, Guangzhou 510006, China.
School of Chemistry and Chemical Engineering, Guangzhou Key Laboratory for Clean Energy and Materials, Guangzhou University, Guangzhou 510006, China.
Sci Total Environ. 2023 Jan 15;856(Pt 2):159083. doi: 10.1016/j.scitotenv.2022.159083. Epub 2022 Sep 30.
The development of bifunctional catalysts is an effective way to simultaneously address the slow kinetics of oxygen reduction reaction (ORR) on the cathode and biofilm contamination in the microbial fuel cells (MFC). Cu-N/C@Cu composites were synthesized as bifunctional cathode catalysts for MFC by doping, adsorption, and two calcinations by using Cu-ZIF-8 as the precursor. The higher Cu-N content confers excellent ORR catalytic activity to the optimized Cu-N/C@Cu-2 catalyst. The half-wave potential for Cu-N/C@Cu-2 in a neutral solution is 0.67 V vs. RHE, which is close to that of commercial 20% Pt/C (0.70 V vs. RHE). The maximum power density of the MFCs assembled with Cu-N/C@Cu-2 reached 581 ± 13 mW m, which is even better than that using Pt/C (499 ± 13 mW m). Moreover, the results of antimicrobial activity and biomass test show that the higher Cu content made Cu-N/C@Cu-2 effective against the contamination of cathode biofilm. And the 16S rDNA results find that the community structure of the biofilm is favorable for the power production and purification of MFC. This work shows that copper-based materials can be used as potential bifunctional catalysts to promote MFC applications in wastewater treatment.
双功能催化剂的开发是一种有效的方法,可以同时解决阴极上氧还原反应(ORR)的缓慢动力学和微生物燃料电池(MFC)中的生物膜污染问题。通过掺杂、吸附和两次煅烧,以 Cu-ZIF-8 为前驱体合成了作为 MFC 双功能阴极催化剂的 Cu-N/C@Cu 复合材料。优化的 Cu-N/C@Cu-2 催化剂具有较高的 Cu-N 含量,赋予其优异的 ORR 催化活性。在中性溶液中,Cu-N/C@Cu-2 的半波电位为 0.67 V vs. RHE,接近商业 20%Pt/C(0.70 V vs. RHE)的半波电位。组装的 MFC 采用 Cu-N/C@Cu-2 时的最大功率密度达到 581±13 mW m,甚至优于采用 Pt/C(499±13 mW m)时的最大功率密度。此外,抗菌活性和生物量测试结果表明,较高的铜含量使 Cu-N/C@Cu-2 能够有效抑制阴极生物膜的污染。16S rDNA 结果发现,生物膜的群落结构有利于 MFC 的产电和净化。这项工作表明,铜基材料可用作潜在的双功能催化剂,以促进 MFC 在废水处理中的应用。