Photocatalytic evolution of molecular hydrogen and oxygen over La-doped NaTaO3 particles: Effect of different cocatalysts (Presentation Recording)

I. Ivanova, Tarek A. Kandiel, A. Hakki, R. Dillert, D. Bahnemann
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Abstract

To solve the global energy and environmental issues highly efficient systems for solar energy conversion and storage are needed. One of them involves the photocatalytic conversion of solar energy into the storable fuel molecular hydrogen via the water splitting process utilizing metal-oxide semiconductors as catalysts. Since photocatalytic water splitting is still a rather poorly understood reaction, fundamental research in this field is required. Herein, the photocatalytic activity for water splitting was investigated utilizing La-doped NaTaO3 as a model photocatalyst. The activity of La-doped NaTaO3 was assessed by the determination of the overall quantum yield of molecular hydrogen and molecular oxygen evolution. In pure water La-doped NaTaO3 exhibits rather poor activity for the photocatalytic H2 evolution whereby no O2 was detected. To enhance the photocatalytic activity the surface of La-doped NaTaO3 was modified with various cocatalysts including noble metals (Pt, Au and Rh) and metal oxides (NiO, CuO, CoO, AgO and RuO2). The photocatalytic activity was evaluated in pure water, in aqueous methanol solution, and in aqueous silver nitrate solution. The results reveal that cocatalysts such as RuO2 or CuO exhibiting the highest catalytic activity for H2 evolution from pure water, possess, however, the lowest activity for O2 evolution from aqueous silver nitrate solution. La-doped NaTaO3 modified with Pt shows the highest quantum yield of 33 % with respect to the H2 evolution in the presence of methanol. To clarify the role of methanol in such a photocatalytic system, long-term investigations and isotopic studies were performed. The underlying mechanisms of methanol oxidation were elucidated.
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分子氢和氧在la掺杂的NaTaO3粒子上的光催化演化:不同助催化剂的影响(报告记录)
为了解决全球能源和环境问题,需要高效的太阳能转换和储存系统。其中之一是利用金属氧化物半导体作为催化剂,通过水分解过程将太阳能光催化转化为可储存的燃料分子氢。由于光催化水分解是一个尚不为人所知的反应,因此需要在这一领域进行基础研究。本文以la掺杂的NaTaO3为模型光催化剂,研究了水裂解的光催化活性。通过测定分子氢的总量子产率和分子析氧量子产率来评价la掺杂的NaTaO3的活性。在纯水中,la掺杂的NaTaO3表现出相当差的光催化析氢活性,因此没有检测到O2。为了提高la掺杂的NaTaO3的光催化活性,采用多种助催化剂对其表面进行修饰,包括贵金属(Pt、Au和Rh)和金属氧化物(NiO、CuO、CoO、AgO和RuO2)。在纯水、甲醇水溶液和硝酸银水溶液中评价了其光催化活性。结果表明,助催化剂如RuO2或CuO对纯水析出H2的催化活性最高,而对硝酸银水溶液析出O2的催化活性最低。经Pt修饰的la掺杂的NaTaO3在甲醇存在下的H2析出量子产率最高,达到33%。为了阐明甲醇在这种光催化系统中的作用,进行了长期的调查和同位素研究。阐明了甲醇氧化的基本机理。
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