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Ultrathin‐Film Titania Photocatalyst on Nanocavity for CO2 Reduction with Boosted Catalytic Efficiencies

机译:纳米腔上的超薄膜二氧化钛光催化剂可提高催化效率从而减少二氧化碳排放

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摘要

Photocatalytic CO2 reduction with water to hydrocarbons represents a viable and sustainable process toward greenhouse gas reduction and fuel/chemical production. Development of more efficient catalysts is the key to mitigate the limits in photocatalytic processes. Here, a novel ultrathin‐film photocatalytic light absorber (UFPLA) with TiO2 films to design efficient photocatalytic CO2 conversion processes is created. The UFPLA structure conquers the intrinsic trade‐off between optical absorption and charge carrier extraction efficiency, that is, a solar absorber should be thick enough to absorb majority of the light allowable by its bandgap but thin enough to allow charge carrier extraction for reactions. The as‐obtained structures significantly improve TiO2 photocatalytic activity and selectivity to oxygenated hydrocarbons than the benchmark photocatalyst (Aeroxide P25). Remarkably, UFPLAs with 2‐nm‐thick TiO2 films result in hydrocarbon formation rates of 0.967 mmol g−1 h−1, corresponding to 1145 times higher activity than Aeroxide P25. This observation is confirmed by femtosecond transient absorption spectroscopic experiments where longer charge carrier lifetimes are recorded for the thinner films. The current work demonstrates a powerful strategy to control light absorption and catalysis in CO2 conversion and, therefore, creates new and transformative ways of converting solar energy and greenhouse gas to alcohol fuels/chemicals.
机译:用水将光催化还原CO2转化为碳氢化合物是实现温室气体减排和燃料/化学生产的可行且可持续的过程。开发更有效的催化剂是减轻光催化工艺限制的关键。在这里,创建了一种新型的具有TiO2薄膜的超薄膜光催化光吸收剂(UFPLA),以设计有效的光催化CO2转化工艺。 UFPLA结构克服了光吸收和电荷载流子提取效率之间的内在折衷,也就是说,太阳能吸收器的厚度应足以吸收其带隙所允许的大部分光,但又要足够薄,以允许电荷载流子提取用于反应。所获得的结构比基准光催化剂(Aeroxide P25)显着提高了TiO2的光催化活性和对氧化烃的选择性。值得注意的是,具有2 nm厚TiO2薄膜的UFPLAs的烃形成速率为0.967 mmol g -1 h -1 ,相当于活性比Aeroxide P25高1145倍。飞秒瞬态吸收光谱实验证实了这一观察结果,对于较薄的薄膜,其记录的载流子寿命更长。当前的工作展示了控制CO2转化过程中的光吸收和催化的强大策略,因此,创造了将太阳能和温室气体转化为酒精燃料/化学品的新颖且具有变革性的方式。

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