Phase effect of TiO2 on surface hydrogen adsorption/desorption in controlling photocatalytic methane conversion

IF 7.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Jiakang You, Ardeshir Baktash, Dazhi Yao, Yanzhao Zhang, Shanshan Ding, Jingwei Hou, Guangyu Zhao, Yonggang Jin, Zhiliang Wang, Lianzhou Wang
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Abstract

Identifying the rate-determining step is crucial for designing an effective photocatalytic system. The surface adsorption/desorption behaviour of reactants has received much less attention in photocatalyst design because the charge separation and transfer in the bulk is commonly regarded as a more sluggish process. In this work, we investigate photocatalytic methane (CH4) conversion (PMC) on various titanium oxide (TiO2) surfaces, including rutile and anatase, and reveal that the influence of surface CH4 adsorption can outweigh the photogenerated charge separation and transfer. Specifically, the rutile TiO2 surface is totally inert for CH4 activation. Further theoretical calculations reveal the significance of the hydrogen-adsorption/desorption process during the initial C–H bond cleavage on the TiO2 surface. A reversible hydrogen adsorption/desorption process with a small Gibbs free energy not only enables the activation of the first C–H bond in CH4 but also ensures a timely clearance of surface-adsorbed species, leading to a continuous PMC process. The findings of the phase effect study on the interaction between the photocatalyst surface and hydrogen atoms provide new insights into the rational design of efficient photocatalysts towards PMC. It also highlights the gap in transferring the knowledge of photocatalytic water splitting into PMC.

Abstract Image

TiO2对表面氢吸附/解吸控制光催化甲烷转化的相效应
确定速率决定步骤对于设计有效的光催化系统至关重要。反应物的表面吸附/解吸行为在光催化剂设计中受到的关注较少,因为电荷在体中的分离和转移通常被认为是一个更缓慢的过程。在这项工作中,我们研究了各种氧化钛(TiO2)表面(包括金红石和锐钛矿)上的光催化甲烷(CH4)转化(PMC),并揭示了表面CH4吸附的影响可以超过光产生的电荷分离和转移。具体来说,金红石型TiO2表面对CH4活化是完全惰性的。进一步的理论计算揭示了TiO2表面C-H键初始裂解过程中氢吸附/解吸过程的重要意义。一个具有小吉布斯自由能的可逆氢吸附/解吸过程不仅可以激活CH4中的第一个C-H键,而且可以确保及时清除表面吸附的物质,从而实现连续的PMC过程。光催化剂表面与氢原子相互作用的相效应研究结果为PMC高效光催化剂的合理设计提供了新的见解。它还强调了在将光催化水分解知识转化为PMC方面的差距。
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来源期刊
Chemical Science
Chemical Science CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
14.40
自引率
4.80%
发文量
1352
审稿时长
2.1 months
期刊介绍: Chemical Science is a journal that encompasses various disciplines within the chemical sciences. Its scope includes publishing ground-breaking research with significant implications for its respective field, as well as appealing to a wider audience in related areas. To be considered for publication, articles must showcase innovative and original advances in their field of study and be presented in a manner that is understandable to scientists from diverse backgrounds. However, the journal generally does not publish highly specialized research.
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