Addressing the competing adsorption bottleneck in photoreduction of CO2 using a hydrophilic-hydrophobic heterojunction photocatalyst

Ragulkrishnan V , Tarek Fawzi , Subbiah Alwarappan , Tiju Thomas , Hyeonseok Lee , Somnath C Roy
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Abstract

Solar powered conversion / reduction of carbon dioxide into value added chemicals has been identified as one of the foremost challenges for materials science in the 21st century. Despite extensive research, product yield remained low and one of the primary factors has been the issue of competing adsorption of CO2 and water vapour on the catalyst surface. In this work we employ reduced graphene oxide wrapped TiO2 nanotubes (TiO2 - rGO) as a heterojunction photocatalyst and demonstrate that UV irradiation induces hydrophilicity on the TiO2 surface and, hydrophobicity on the rGO surface. The resulting photocatalyst shows 25 % higher yield of methane over that of untreated photocatalyst. Hence, UV irradiation induced tailoring of the hydrophilicity yields selective adsorption sites for the CO2 and water vapour leading to a significant enhancement of the methane yield through photocatalytic reduction process.

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利用亲水-疏水异质结光催化剂解决二氧化碳光还原过程中的竞争吸附瓶颈问题
利用太阳能将二氧化碳转化/还原为高附加值化学品已被确定为 21 世纪材料科学面临的首要挑战之一。尽管进行了大量研究,但产品产量仍然很低,其中一个主要因素是催化剂表面对二氧化碳和水蒸气的竞争吸附问题。在这项工作中,我们采用还原氧化石墨烯包裹的二氧化钛纳米管(TiO2 - rGO)作为异质结光催化剂,并证明紫外线照射可诱导二氧化钛表面的亲水性和 rGO 表面的疏水性。与未经处理的光催化剂相比,这种光催化剂的甲烷产率提高了 25%。因此,紫外线照射引起的亲水性定制产生了二氧化碳和水蒸气的选择性吸附位点,从而通过光催化还原过程显著提高了甲烷产量。
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