Kim Choonsoo, Kim Seonghwan, Hong Sung Pil, Lee Jaehan, Yoon Jeyong
School of Chemical and Biological Engineering, College of Engineering, Institute of Chemical Process, Seoul National University (SNU), Gwanak-gu, Daehak-dong, Seoul 151-742, Republic of Korea.
Phys Chem Chem Phys. 2016 Jun 7;18(21):14370-5. doi: 10.1039/c6cp01799a. Epub 2016 May 12.
Recently, two types of TiO2 nanotube arrays (NTAs) (blue- and black-colored TiO2 NTAs), which are easily fabricated by electrochemical self-doping, have gained much attention due particularly to their enhanced capacitive and oxidant-generating properties. These enhanced electrochemical properties mean that they have potential as basic materials for energy and environmental applications, such as in supercapacitors and anodes for water treatment. However, the understanding of the effect of the doping level of these TiO2 NTAs on their electrochemical properties is limited because there is no direct comparison or relevant discussion of their respective electrochemical properties under the same conditions, despite the similar surface characteristics of the TiO2 NTAs obtained by comparable electrochemical doping. Therefore, the objective of this study was to investigate the effect of the doping level of blue and black TiO2 NTAs on their electrochemical properties, including the capacitive and oxidant-generating properties. Although no significant difference in their surface properties was found using SEM, XRD and XPS, the black TiO2 NTA revealed a slightly higher doping level than the blue TiO2 NTA, which is caused by the order of the electrochemical self-doping and annealing conditions. With the different doping levels of the two TiO2 NTAs, the black TiO2 NTA showed a higher areal capacitance, indicating good capacitive properties, and better service life in oxidant-generation than that of the blue TiO2 NTA. The blue TiO2 NTA exhibited a larger oxygen evolution overpotential and higher chlorine evolution efficiency than that of the black TiO2 NTA. We report that the new knowledge on blue and black TiO2 NTAs from this study can contribute to the further development of supercapacitors and oxidant-generating anodes for water treatment.
最近,通过电化学自掺杂容易制备的两种类型的二氧化钛纳米管阵列(NTAs)(蓝色和黑色二氧化钛NTAs),因其增强的电容和产氧化剂性能而备受关注。这些增强的电化学性能意味着它们有潜力作为能源和环境应用的基础材料,例如用于超级电容器和水处理阳极。然而,对于这些二氧化钛NTAs的掺杂水平对其电化学性能的影响的理解是有限的,因为尽管通过可比的电化学掺杂获得的二氧化钛NTAs具有相似的表面特征,但在相同条件下没有对它们各自的电化学性能进行直接比较或相关讨论。因此,本研究的目的是研究蓝色和黑色二氧化钛NTAs的掺杂水平对其电化学性能的影响,包括电容和产氧化剂性能。尽管使用扫描电子显微镜(SEM)、X射线衍射(XRD)和X射线光电子能谱(XPS)未发现它们表面性能有显著差异,但黑色二氧化钛NTA的掺杂水平略高于蓝色二氧化钛NTA,这是由电化学自掺杂和退火条件的顺序导致的。由于两种二氧化钛NTAs的掺杂水平不同,黑色二氧化钛NTA表现出更高的面积电容,表明其具有良好的电容性能,并且在产氧化剂方面的使用寿命比蓝色二氧化钛NTA更好。蓝色二氧化钛NTA比黑色二氧化钛NTA表现出更大的析氧过电位和更高的析氯效率。我们报道,本研究中关于蓝色和黑色二氧化钛NTAs的新知识有助于超级电容器和水处理产氧化剂阳极的进一步发展。