Wang Liming, Li Mengyao, Pei Liang, Liu Tingting, Zhang Tian, Ao Dong
College of Environmental and Chemical Engineering, Xi'an Polytechnic University, Xi'an 710048, China.
Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi 830011, China.
Toxics. 2022 Oct 22;10(11):635. doi: 10.3390/toxics10110635.
Using photodeposition and plasma, Pt-N co-modified TiO nanotube electrodes were created. Several techniques, such as SEM, XRD, UV-VIS-DRS, XPS, and PL, were used to analyze the electrode shape, crystalline structure, light absorption range, elemental composition, and photogenerated carrier recombination efficiency. Using the electrochemical workstation, EIS and I-t were utilized to examine the electrochemical characteristics. The results indicated that the diameter of the TiO nanotube tubes was around 90 nm, and that the photodeposition duration affected the amount of Pt particles deposited. The deposited Pt particles efficiently reduced the photogenerated carrier complexation rate of the N-TiO nanotube electrode, contributing to the separation of electron-hole pairs and light utilization. Electrochemical studies indicated that Pt-N co-modified TiO increased the electrode's oxidation and electrical conductivity, as well as its photoelectrocatalytic capacity. Oxytetracycline degradation in simulated wastewater by a Pt-N co-modified TiO nanotube electrode revealed the exceptional PEC activity, and the oxytetracycline degradation processes followed primary kinetics. •O and •OH played a significant role in the photoelectrocatalytic degradation of oxytetracycline, resulting in a novel method for oxytetracycline degradation.
利用光沉积和等离子体技术制备了Pt-N共修饰的TiO纳米管电极。采用扫描电子显微镜(SEM)、X射线衍射(XRD)、紫外-可见-漫反射光谱(UV-VIS-DRS)、X射线光电子能谱(XPS)和光致发光(PL)等多种技术对电极的形貌、晶体结构、光吸收范围、元素组成和光生载流子复合效率进行了分析。利用电化学工作站,采用电化学阻抗谱(EIS)和电流-时间曲线(I-t)对其电化学特性进行了研究。结果表明,TiO纳米管的直径约为90 nm,光沉积时间影响Pt颗粒的沉积量。沉积的Pt颗粒有效地降低了N-TiO纳米管电极的光生载流子复合率,有助于电子-空穴对的分离和光的利用。电化学研究表明,Pt-N共修饰的TiO提高了电极的氧化能力、电导率及其光电催化能力。Pt-N共修饰的TiO纳米管电极对模拟废水中土霉素的降解显示出优异的光电催化活性,且土霉素的降解过程符合一级动力学。•O和•OH在土霉素的光电催化降解中起重要作用,从而产生了一种新的土霉素降解方法。