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(2×1)锐钛矿 TiO(011) 表面的重构机制。

(2×1) Reconstruction Mechanism of Rutile TiO(011) Surface.

机构信息

Key Laboratory for Advanced Materials, Centre for Computational Chemistry and Research Institute of Industrial Catalysis, East China University of Science and Technology, Shanghai, 200237, P.R. China.

出版信息

ACS Nano. 2023 Feb 28;17(4):3549-3556. doi: 10.1021/acsnano.2c09942. Epub 2023 Feb 6.

Abstract

Understanding the reconstruction kinetics of solid surfaces involving an ensemble of atomic movements is practically important but challenging due to the complexity of high-dimensional potential energy surfaces. Herein, we develop a step-deciding technique incorporated with the nudged elastic band method, which enables multidirection pathway sampling and ensures the capture of a minimum energy path (MEP). Using this approach, the (2×1) reconstruction mechanism of a rutile-TiO(011) surface, a classic and long-standing open problem in the fields of surface science and heterogeneous catalysis, is quantified, and the MEP is explicitly identified and explained. Following the least-bond-breaking rule, it gives a stepwise Ti-O bond cleavage mechanism with a collection of decoupled local structural relaxation modes at an overall barrier of 1.25 eV critically affected by initial Ti-O bond opening, which is much lower than the common synergy mechanism. Moreover, the adsorption-induced reconstruction is rationalized considering practical reaction conditions, where H atom adsorbate is shown to effectively stabilize the labile one-fold O intermediate and promote the reconstruction kinetics. This work reveals the reconstruction mechanism regarding multiatom movements and provides a general method for the structural exploration of other complicated systems.

摘要

理解涉及原子运动总体的固体质点表面重构动力学在实践中具有重要意义,但由于高维势能表面的复杂性,这一过程极具挑战性。在此,我们开发了一种包含进 nudged elastic band 方法的分步决策技术,该技术可实现多方向途径的采样,并确保捕获最小能量路径 (MEP)。利用这种方法,我们对金红石-TiO(011)表面的重构机制(一个经典且由来已久的表面科学和多相催化领域的开放性问题)进行了量化,明确并解释了 MEP。按照最小键断裂规则,我们得到了分步 Ti-O 键断裂机制,其中包括一系列解耦的局部结构弛豫模式,整体势垒为 1.25eV,这一势垒主要受初始 Ti-O 键的打开影响,远低于常见的协同机制。此外,我们考虑到实际反应条件,对吸附诱导重构进行了合理化,其中 H 原子吸附物可有效稳定不稳定的一配位 O 中间物,并促进重构动力学。这项工作揭示了多原子运动的重构机制,并为其他复杂体系的结构探索提供了一种通用方法。

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