Theoretical study of CO2 hydrogenation to methanol on modified Au/In2O3 catalysts: Effects of hydrogen spillover and activation energy prediction for hydrogen transfer

IF 2.1 4区 化学 Q3 CHEMISTRY, PHYSICAL Surface Science Pub Date : 2024-03-11 DOI:10.1016/j.susc.2024.122469
Huang Qin, Hai Zhang, Kai Wang, Xingzi Wang, Weidong Fan
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Abstract

With the increasing attention in environmental issues caused by CO2 emissions, methanol conversion by CO2 hydrogenation is an effective strategy to solve this existing energy dilemma. The rationale behind hydrogen spillover on methanol synthesis is unraveled via density functional theory (DFT) calculations in this work, furthermore, the activation energy of hydrogen transfer process as affected by spillover is also summarized in a general paradigm for facilitating the understanding of hydrogenation characteristics. The results demonstrate that the spillover strategy significantly facilitates the hydrogenation reaction by supplying available hydrogen adatoms. This effect is particularly pronounced during the stage when OH is formed directly at the substrate site and combines with H to produce H2O, leading to a substantial reduction in activation energy from the initial 3.74 eV to 0.78 eV. In addition, a comprehensive predictive model for the kinetic characteristics of hydrogen spillover process is established based on the machine learning algorithm and SISSO guidance. By employing the combined approach of SISSO and neural network, we have achieved a stable prediction performance for activation energy with R2 = 0.99 and RMSE = 0.07 eV. The variable of ChgFSAu is identified as the most representative factor in describing the activation energy, demonstrating a correlation coefficient of -0.60. The extended multidimensional expression of DistAu further highlights its close connection to activation energy, achieving an RMSE value of 0.41 eV. To sum up, this work elucidates the possible thoughts of catalyst design with spillover effect and gives reference for the description screening towards the chemical reactions similar to hydrogen spillover.

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改性 Au/In2O3 催化剂上 CO2 加氢制甲醇的理论研究:氢溢出的影响和氢转移的活化能预测
随着二氧化碳排放引起的环境问题日益受到关注,通过二氧化碳加氢转化甲醇是解决现有能源困境的有效策略。本研究通过密度泛函理论(DFT)计算揭示了氢溢出对甲醇合成的作用原理,并总结了氢溢出影响氢转移过程的活化能,为理解氢化特性提供了一般范式。结果表明,溢出策略通过提供可用的氢原子,极大地促进了氢化反应。在底物位点直接形成 OH 并与 H 结合生成 H2O 的阶段,这种效果尤为明显,导致活化能从最初的 3.74 eV 大幅降低到 0.78 eV。此外,基于机器学习算法和 SISSO 引导,建立了氢溢出过程动力学特征的综合预测模型。通过采用 SISSO 和神经网络相结合的方法,我们实现了活化能的稳定预测性能,R2 = 0.99,RMSE = 0.07 eV。ChgFSAu 变量被认为是描述活化能的最具代表性的因素,其相关系数为 -0.60。DistAu 的扩展多维表达式进一步突出了其与活化能的密切联系,其 RMSE 值为 0.41 eV。总之,这项工作阐明了具有溢出效应的催化剂设计的可能思路,并为类似氢溢出的化学反应的描述筛选提供了参考。
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来源期刊
Surface Science
Surface Science 化学-物理:凝聚态物理
CiteScore
3.30
自引率
5.30%
发文量
137
审稿时长
25 days
期刊介绍: Surface Science is devoted to elucidating the fundamental aspects of chemistry and physics occurring at a wide range of surfaces and interfaces and to disseminating this knowledge fast. The journal welcomes a broad spectrum of topics, including but not limited to: • model systems (e.g. in Ultra High Vacuum) under well-controlled reactive conditions • nanoscale science and engineering, including manipulation of matter at the atomic/molecular scale and assembly phenomena • reactivity of surfaces as related to various applied areas including heterogeneous catalysis, chemistry at electrified interfaces, and semiconductors functionalization • phenomena at interfaces relevant to energy storage and conversion, and fuels production and utilization • surface reactivity for environmental protection and pollution remediation • interactions at surfaces of soft matter, including polymers and biomaterials. Both experimental and theoretical work, including modeling, is within the scope of the journal. Work published in Surface Science reaches a wide readership, from chemistry and physics to biology and materials science and engineering, providing an excellent forum for cross-fertilization of ideas and broad dissemination of scientific discoveries.
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