Zhao Liuhui, Li Zihao, Yang Jing, Sun Jiawen, Zhai Xiaofan, Ma Fubin, Duan Jizhou, Ju Peng, Hou Baorong
School of Biologic Engineering, Qilu University of Technology (Shandong Academy of Sciences), Jinan 250300, China.
CAS Key Laboratory of Marine Environmental Corrosion and Bio-Fouling, Institute of Oceanology, Chinese Academy of Sciences, No. 7 Nanhai Road, Qingdao 266071, China.
Nanomaterials (Basel). 2024 Apr 2;14(7):621. doi: 10.3390/nano14070621.
In this paper, a novel method was proposed for the synthesis of CuS on copper mesh via electrolysis in SRB culture medium. It was found that following electrolysis in SRB medium, squamous-like CuS arrays were obtained on the copper mesh, and the CuS loading contents varied with the electrolyzing parameters. The resultant CuS on copper mesh in SRB (CSCM-SRB) with the highest catalytic MB degradation properties was produced by electrolysis at 3.75 mA/cm for 900 s. The optimized MB-degrading conditions were determined to be 1.2 cm/mL CSCM-SRB with 0.05 M HO at 35 °C when pH = 6, under which the degradation of MB reached over 99% after 120 min of reaction. Disinfecting properties was also proven by antibacterial tests, revealing that an almost 100% antibacterial rate against was obtained after 8 min. The organic compounds produced by SRB adsorbed on CSCM-SRB strongly promoted the degradation of MB. Furthermore, possible Fenton-like mechanisms of CSCM-SRB were proposed, illustrating that ·O, ·OH, and O acted as the main functional species during Fenton-like reactions, leading to effective MB degradation and high antibacterial properties. Finally, a simple device for wastewater treatment was designed, providing possible applications in real environments.
本文提出了一种在硫酸盐还原菌(SRB)培养基中通过电解在铜网上合成硫化铜(CuS)的新方法。研究发现,在SRB培养基中进行电解后,在铜网上获得了鳞状的CuS阵列,且CuS负载量随电解参数而变化。通过在3.75 mA/cm下电解900 s,可制备出在SRB中铜网上具有最高催化亚甲基蓝(MB)降解性能的CuS(CSCM-SRB)。确定优化的MB降解条件为:当pH = 6时,在35℃下,1.2 cm/mL的CSCM-SRB与0.05 M的过氧化氢(H₂O₂),在此条件下反应120分钟后MB的降解率达到99%以上。抗菌测试也证明了其消毒性能,结果表明8分钟后对大肠杆菌的抗菌率几乎达到100%。SRB产生的有机化合物吸附在CSCM-SRB上,强烈促进了MB的降解。此外,还提出了CSCM-SRB可能的类芬顿机制,表明·O、·OH和O₂在类芬顿反应中作为主要功能物种,导致MB有效降解和高抗菌性能。最后,设计了一种简单的废水处理装置,为实际环境中的应用提供了可能。