Mîndroiu Vasilica Mihaela, Stoian Andrei Bogdan, Irodia Roberta, Trușcă Roxana, Vasile Eugeniu
Faculty of Chemical Engineering and Biotechnologies, University Politehnica of Bucharest, 1-7 Polizu, 011061 Bucharest, Romania.
Materials (Basel). 2023 Apr 16;16(8):3147. doi: 10.3390/ma16083147.
In this study, TiO thin films formed by dip-coating on an FTO substrate were obtained and characterized using surface, optical and electrochemical techniques. The impact of the dispersant (polyethylene glycol-PEG) on the surface (morphology, wettability, surface energy), optical (band gap and Urbach energy) and electrochemical (charge-transfer resistance, flat band potential) properties were investigated. When PEG was added to the sol-gel solution, the optical gap energy of the resultant films was reduced from 3.25 to 3.12 eV, and the Urbach energy increased from 646 to 709 meV. The dispersant addition in the sol-gel process influences surface features, as evidenced by lower contact-angle values and higher surface energy achieved for a compact film with a homogenous nanoparticle structure and larger crystallinity size. Electrochemical measurements (cycle voltammetry, electrochemical impedance spectroscopy and the Mott-Schottky technique) revealed improved catalytic properties of the TiO film, due to a higher insertion/extraction rate of protons into the TiO nanostructure, as well as a decrease in charge-transfer resistance from 418 k to 23.4 k and a decrease in flat band potential from 0.055 eV to -0.019 eV. The obtained TiO films are a promising alternative for technological applications, due to their advantageous surface, optical and electrochemical features.
在本研究中,通过浸涂法在FTO衬底上制备了TiO薄膜,并使用表面、光学和电化学技术对其进行了表征。研究了分散剂(聚乙二醇-PEG)对表面(形貌、润湿性、表面能)、光学(带隙和乌尔巴赫能量)和电化学(电荷转移电阻、平带电位)性能的影响。当向溶胶-凝胶溶液中添加PEG时,所得薄膜的光学带隙能量从3.25 eV降低至3.12 eV,乌尔巴赫能量从646 meV增加至709 meV。溶胶-凝胶过程中添加分散剂会影响表面特征,对于具有均匀纳米颗粒结构和较大结晶尺寸的致密薄膜,较低的接触角值和较高的表面能证明了这一点。电化学测量(循环伏安法、电化学阻抗谱和莫特-肖特基技术)表明,TiO薄膜的催化性能得到改善,这是由于质子向TiO纳米结构中的插入/提取速率更高,以及电荷转移电阻从418 k降低至23.4 k,平带电位从0.055 eV降低至-0.019 eV。由于其有利的表面、光学和电化学特性,所制备的TiO薄膜是技术应用的一种有前景的替代材料。