首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Study the structure and performance of thermal/plasma modified Au nanoparticle-doped TiO_2 photocatalyst
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Study the structure and performance of thermal/plasma modified Au nanoparticle-doped TiO_2 photocatalyst

机译:研究热等离子体改性金纳米粒子掺杂TiO_2光催化剂的结构和性能

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This study describes the influence of thermal/plasma treatments on the structure and photocatalytic performance of the Au-doped TiO_2 catalyst. Au (gold) nanoparticles were attached on TiO_2 (Titania) nanoparticle surfaces by conventional deposition precipitation technique and the resulting catalysts were subsequently modified with thermal (at 450?C under vacuum) and plasma (at an ambient temperature under Argon atmosphere for 20 min) treatments. Structural characterization of the modified catalysts was performed by diverse analytical techniques and the photocatalytic activity was evaluated by assessing the degradation of the methylene blue (MB) in water under UV (ultra-violet) irradiations. Results showed that the thermal/plasma treatment significantly influenced the structural features of Au-doped TiO_2 catalyst by altering the morphology, increasing the Au nanoparticles population, improving the Au/TiO_2 catalytic activity, changing the textural properties and reducing the band gap energies thus tuned Au-doped TiO_2 catalyst to higher efficiency. Thermal/plasma treated Au-doped TiO_2 was found to exhibit higher photocatalytic activity than the as-synthesized (pristine sample). This improvement in photocatalytic activity might be due to the cathodic influence of gold in suppressing the electron-hole recombination during the reaction.
机译:这项研究描述了热处理/等离子处理对金掺杂的TiO_2催化剂的结构和光催化性能的影响。通过常规沉积沉淀技术将金(金)纳米颗粒附着在TiO_2(二氧化钛)纳米颗粒表面上,然后将所得催化剂进行热(在真空中于450°C)和等离子体(在氩气环境下于环境温度下进行20分钟)的改性。治疗。改性催化剂的结构表征是通过多种分析技术进行的,通过评估在紫外线(紫外线)照射下水中亚甲基蓝(MB)的降解,评估了光催化活性。结果表明,热处理/等离子处理通过改变形态,增加Au纳米粒子的数量,改善Au / TiO_2的催化活性,改变质构性质并降低能带隙能,显着影响了Au掺杂的TiO_2催化剂的结构特征。掺金的TiO_2催化剂具有更高的效率。发现经热/等离子体处理的Au掺杂的TiO_2比合成的(原始样品)具有更高的光催化活性。光催化活性的这种提高可能是由于金在抑制反应期间电子-空穴复合方面的阴极影响。

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