Department of Integrative Environmental Biotechnology, College of Environmental and Bioresource Sciences, Jeonbuk National University, Iksan, 54596, Republic of Korea.
Division of Biotechnology, Safety, Environment and Life Science Institute, College of Environmental and Bioresource Sciences, Jeonbuk National University, Iksan, 54596, Republic of Korea.
Chemosphere. 2024 Aug;361:142554. doi: 10.1016/j.chemosphere.2024.142554. Epub 2024 Jun 6.
Increasing multidrug-resistant pathogenic microbial around the world become a global problem, making it imperative to develop effective methods for bacterial inactivation in wastewater. In this study, we propose a multifunctional photoelectrochemical (PEC) system to successfully disinfect microbial cells and degrade orange (II) dyes. CoO NP were synthesized by spin-coating onto hydrothermally synthesized TiO nanorod arrays followed by electrodeposited NiFe-LDH to develop the NiFe-LDH/CoO NP-TiO NRs. Interestingly, spin-coated CoO NP-TiO NRs exhibited a 1.5-fold enhancement in photocurrent (1.384 mA/cm) than pristine TiO NRs (0.92 mA/cm). A NiFe-layered double hydroxide (LDH) cocatalysts layer further exhibits the maximum photocurrent density of 1.64 mA/cm with IPCE of 84.5% at 1.0 V at 380 nm. Furthermore, NiFe-LDH/CoO-TiO NR photoanodes were effectually employed for photoelectrochemical bacteria disinfection and organic pollutant removals. With NiFe-LDH/CoO-TiO NR, 99% (120 min) bacterial inactivation and 99% (60 min) orange II dye decomposition efficiency was achieved. Superoxide radicals (O), hydroxyl radicals (HO•), and holes (h) played a critical role in the PEC degradation systems. Due to the synergy between NiFe-LDH cocatalyst and CoO interlayer, surface water oxidation reactions were accelerated over NiFe-LDH/CoO NP-TiO NRs. The charge transport process in NiFe-LDH/CoO NP-TiO NRs photoanode-based PEC system was proposed in detail.
在全球范围内,多药耐药性病原体微生物的不断增加成为一个全球性问题,因此迫切需要开发有效的废水细菌灭活方法。在这项研究中,我们提出了一种多功能光电化学(PEC)系统,成功地对微生物细胞进行消毒和降解橙色(II)染料。通过旋涂在水热合成的 TiO 纳米棒阵列上合成了 CoO NP,然后通过电沉积 NiFe-LDH 来开发 NiFe-LDH/CoO NP-TiO NRs。有趣的是,与原始 TiO NRs(0.92 mA/cm)相比,旋涂 CoO NP-TiO NRs 的光电流(1.384 mA/cm)提高了 1.5 倍。NiFe 层状双氢氧化物(LDH)共催化剂层在 380nm 时以 1.0V 的最大光电流密度为 1.64 mA/cm 和 IPCE 为 84.5%。此外,NiFe-LDH/CoO-TiO NR 光阳极有效地用于光电化学细菌消毒和有机污染物去除。使用 NiFe-LDH/CoO-TiO NR,实现了 99%(120 分钟)的细菌灭活和 99%(60 分钟)的橙色 II 染料分解效率。超氧自由基(O)、羟基自由基(HO•)和空穴(h)在 PEC 降解系统中发挥了关键作用。由于 NiFe-LDH 共催化剂和 CoO 夹层之间的协同作用,NiFe-LDH/CoO NP-TiO NRs 表面上的水氧化反应得到了加速。详细提出了基于 NiFe-LDH/CoO NP-TiO NR 光阳极的 PEC 系统中的电荷传输过程。