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Tuning Redox Potential of Gold Nanoparticle Photocatalysts by Light

机译:用光调整金纳米粒子光催化剂的氧化还原潜力

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Metallic nanoparticle-based photocatalysts have gained a lot of interest in catalyzing oxidation-reduction reactions. In previous studies, the poor performance of these catalysts is partly due to their operation that relies on picosecond-lifetime hot carriers. In this work, electrons that accumulate at a photostationary state, generated by photocharging the catalysts, have a much longer lifetime for catalysis. This approach makes it possible to determine and tune the photoredox potentials of the catalysts. As demonstrated in a model reaction, the photostationary state of the photocatalyzed oxidative etching of colloidal gold nanoparticles using FeCl3 was established under continuous irradiation of different wavelengths. The photoredox potentials of the nanoparticles were then calculated using the Nernst equation. The potentials can be tuned to a range of 1.28 to 1.40 V (vs SHE) under irradiation of different wavelengths in the range of 450 to 517 nm. The effects of particle size or optical power on the photoredox potentials are small compared to the wavelength effect. Control over the photoredox potential of the particles using different excitation wavelengths can potentially be used to tune the activities and selectivities of metallic nanoparticle photocatalysts.
机译:基于金属纳米粒子的光催化剂对催化氧化还原反应进行了很多兴趣。在先前的研究中,这些催化剂的性能不佳部分是由于它们的操作,其依赖于皮秒寿命热载体。在这项工作中,通过光静止状态积聚的电子通过光量催化剂产生,具有更长的催化作用。该方法使得可以确定和调整催化剂的光致电毒电源。如在模型反应中所示,在连续照射不同波长的情况下建立使用FECL3的光催化氧化蚀刻的光催化氧化蚀刻的光诱导状态。然后使用NERNST方程计算纳米颗粒的光毒​​毒剂电位。在不同波长的照射范围为450至517nm的不同波长的照射下,电位可以调谐到1.28至1.40V(vse)的范围。与波长效应相比,粒度或光功率上的粒度或光功率的影响小。控制使用不同激发波长的颗粒的光致乐乐电位可能用于调整金属纳米颗粒光催化剂的活性和选择性。

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