电解质溶液和沉积方法对TiO2/CdS核壳纳米管阵列光电催化性能的影响

IF 0.9 4区 物理与天体物理 Q4 PHYSICS, APPLIED
Selma M. H. Al-Jawad, N. Imran, M. R. Mohammad
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引用次数: 3

摘要

本研究采用阳极氧化技术制备TiO2纳米结构薄膜,采用化学浴沉积(CBD)和连续离子层吸附反应(SILAR)两种方法在TiO2薄膜上制备CdS薄膜。采用XRD、SEM、AFM对TiO2 /CdS薄膜的结构进行了研究和分析,并通过紫外可见光谱、PL光谱和光谱响应对其光学性质进行了研究。对所有沉积膜的XRD分析证实,TiO2形成了两种相,一种是四方相(锐钛矿和金红石),另一种是六方相,属于CdS层。纳米TiO2纳米管阵列(NTAs)/CdS的SEM图像显示,纳米TiO2纳米管的内壁被精细的CdS纳米粒子聚集,这些纳米粒子部分渗透到纳米TiO2纳米管的孔中。AFM测量显示,与TiO2薄膜相比,表面粗糙度有所增加。TiO2 /CdS核壳的PL测量结果显示出两个峰,一个峰位于紫外区,指向TiO2纳米膜的能带隙,另一个峰位于可见光区,指向CdS层内光生电子空穴对的复合。光谱响应测量表明,不同电解质溶液沉积的TiO2 /CdS薄膜的光电流峰都有红移到可见光区。在紫外可见光源照射下,TiO2 /CdS核壳膜表现出高响应。采用阳极氧化/CBD法制备的TiO2 NTAs/CdS薄膜对UV-Vis光具有较高的响应。这种方法提供了一种制造光电极的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of electrolyte solution and deposition methods on TiO2/CdS core–shell nanotube arrays for photoelectrocatalytic application
In this work, TiO2 nanostructure thin films were deposited by using anodization technique, while CdS thin films were deposited on TiO2 films by two methods chemical bath deposition (CBD) and successive ionic layer adsorption and reaction (SILAR). The structure of TiO2 /CdS films were investigated and analyzed by XRD, SEM, and AFM, but the optical properties were investigated by UV–visible spectroscopy, PL spectroscopy, and spectral response. XRD analysis of all deposited films has confirmed the formation of two phases one is tetragonal phase (anatase, and rutile) for TiO2 , and second hexagonal phase which belong to CdS layer. SEM images of TiO2 nanotubes arrays (NTAs)/CdS showed the TiO2 NTs walls become decorated with aggregates of fine CdS nanoparticles that partly penetrate into the TiO2 NTAs pores. AFM measurements displayed increase in the surface roughness compared with TiO2 films. PL measurement results of TiO2 /CdS core–shell show two peaks, one is located at UV-region pointed to energy band gap for TiO2 nano films, and second one is located at visible region pointing to recombination of photogenerated electron–hole pairs within CdS layers. Spectral response measurements showed photocurrent peaks for all TiO2 /CdS films deposited with different electrolyte solution have red-shift to visible region. When illuminated with a UV–Vis light source, the TiO2 /CdS core–shell films displayed high response. A higher response to UV–Vis light was attained with the use of TiO2 NTAs/CdS films prepared by anodization /CBD. This approach offers a technique for fabricating photoelectrodes.
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来源期刊
CiteScore
1.90
自引率
10.00%
发文量
84
审稿时长
1.9 months
期刊介绍: EPJ AP an international journal devoted to the promotion of the recent progresses in all fields of applied physics. The articles published in EPJ AP span the whole spectrum of applied physics research.
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