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晶面结构依赖性及用于苊满全加氢脱氢的有前景的钯-铂催化材料

Crystal Facet Structure Dependence and Promising Pd-Pt Catalytic Materials for Perhydroacenaphthene Dehydrogenation.

作者信息

Wang Yutong, Liu Guozhu

机构信息

Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin 300072, China.

Collaborative Innovation Center of Chemical Science and Engineering, Tianjin University, Tianjin 300072, China.

出版信息

ACS Appl Mater Interfaces. 2023 Aug 23;15(33):40115-40132. doi: 10.1021/acsami.3c08408. Epub 2023 Aug 9.

Abstract

Designing an effective Pd-Pt catalytic material with excellent catalytic performance for perhydroacenaphthene (PHAN) dehydrogenation is a great challenge. In this work, in order to explore the crystal facet structure over the bimetallic Pd-Pt catalyst on the dehydrogenation performance of PHAN, the surface compositions of two kinds of Pd (Pt) atoms with different coverage on Pd modulated Pt (PdPt) and Pt modulated Pd (PtPd) catalysts were designed and studied by means of density functional theory (DFT). Through the investigation of the reaction path of PHAN dehydrogenation on PdPt(111) and PtPd(111) surfaces, it was found that PdPt(111) was advantageous to PHAN dehydrogenation ( = 2.317 eV). This was attributed to a lower energy barrier, more stable dehydrogenation products, and the fact that Pd doping brought Pt(111) close to the Fermi level. Apparently, Pd modulated Pt catalyst has a broad application prospect in the dehydrogenation of PHAN. In the process of optimizing the PdPt morphology, a method for selecting the minimum active unit of PdPt catalysts with different ratios was proposed, that is, the most stable active unit: rhombus structure was determined according to the surface formation energy. Moreover, we correlated the relationship among the number of H atoms removed, adsorption energy, surface charge, activation energy, reaction energy, and surface coverage, and obtained the important parameters to predict the performance of PdPt catalyst in PHAN dehydrogenation system: surface charge and -band center. Finally, the essential correlativity among Pd-Pt surface characteristics, catalytic PHAN activity, and adsorption energy was constructed; that is, the relationship model among -band center, H atom, and product CH adsorption energy was established. This work opens a new simultaneous path to improve the catalytic performance of Pd-Pt-based catalytic materials for PHAN dehydrogenation, which can be achieved by regulating the rhombic active units of Pt modulated by Pd.

摘要

设计一种对苊满(PHAN)脱氢具有优异催化性能的高效钯-铂催化材料是一项巨大挑战。在这项工作中,为了探究双金属钯-铂催化剂上的晶面结构对PHAN脱氢性能的影响,通过密度泛函理论(DFT)设计并研究了钯调制铂(PdPt)和铂调制钯(PtPd)催化剂上两种不同覆盖度的钯(铂)原子的表面组成。通过研究PHAN在PdPt(111)和PtPd(111)表面的脱氢反应路径,发现PdPt(111)有利于PHAN脱氢( = 2.317 eV)。这归因于较低的能垒、更稳定的脱氢产物,以及钯掺杂使Pt(111)接近费米能级这一事实。显然,钯调制铂催化剂在PHAN脱氢方面具有广阔的应用前景。在优化PdPt形貌的过程中,提出了一种选择不同比例PdPt催化剂最小活性单元的方法,即根据表面形成能确定最稳定的活性单元:菱形结构。此外,我们关联了去除的氢原子数、吸附能、表面电荷、活化能、反应能和表面覆盖度之间的关系,得到了预测PdPt催化剂在PHAN脱氢体系中性能的重要参数:表面电荷和 -带中心。最后,构建了钯-铂表面特性、催化PHAN活性和吸附能之间的本质相关性;即建立了 -带中心、氢原子和产物CH吸附能之间的关系模型。这项工作开辟了一条新的同时提高钯-铂基催化材料对PHAN脱氢催化性能的途径,可通过调控钯调制的铂的菱形活性单元来实现。

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