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Suppressing the Photocatalytic Activity of TiO2 Nanoparticles by Extremely Thin Al2O3 Films Grown by Gas-Phase Deposition at Ambient Conditions

机译:在环境条件下气相沉积法制备的极薄Al2O3薄膜抑制TiO2纳米粒子的光催化活性

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摘要

This work investigated the suppression of photocatalytic activity of titanium dioxide (TiO2) pigment powders by extremely thin aluminum oxide (Al2O3) films deposited via an atomic-layer-deposition-type process using trimethylaluminum (TMA) and H2O as precursors. The deposition was performed on multiple grams of TiO2 powder at room temperature and atmospheric pressure in a fluidized bed reactor, resulting in the growth of uniform and conformal Al2O3 films with thickness control at sub-nanometer level. The as-deposited Al2O3 films exhibited excellent photocatalytic suppression ability. Accordingly, an Al2O3 layer with a thickness of 1 nm could efficiently suppress the photocatalytic activities of rutile, anatase, and P25 TiO2 nanoparticles without affecting their bulk optical properties. In addition, the influence of high-temperature annealing on the properties of the Al2O3 layers was investigated, revealing the possibility of achieving porous Al2O3 layers. Our approach demonstrated a fast, efficient, and simple route to coating Al2O3 films on TiO2 pigment powders at the multigram scale, and showed great potential for large-scale production development.
机译:这项工作研究了使用三甲基铝(TMA)和H2O作为前体,通过原子层沉积型工艺沉积的极薄的氧化铝(Al2O3)膜对二氧化钛(TiO2)颜料粉的光催化活性的抑制作用。在室温和大气压下,在流化床反应器中,在几克TiO2粉末上进行沉积,从而得到厚度控制在亚纳米级的均匀和共形的Al2O3膜。沉积的Al 2 O 3膜表现出优异的光催化抑制能力。因此,厚度为1 nm的Al2O3层可以有效地抑制金红石型,锐钛矿型和P25 TiO2纳米颗粒的光催化活性,而不会影响其整体光学性能。另外,研究了高温退火对Al 2 O 3层的性能的影响,揭示了获得多孔Al 2 O 3层的可能性。我们的方法展示了一种快速,高效且简单的方法,可以在TiO 2 颜料粉末上以毫克数级涂覆Al 2 O 3 膜,并且显示出大规模生产发展的巨大潜力。

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