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Quantum Monte Carlo Calculations on a Benchmark Molecule–MetalSurface Reaction: H2 + Cu(111)

机译:基准分子-金属的量子蒙特卡罗计算表面反应:H2 + Cu(111)

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摘要

Accurate modeling of heterogeneous catalysis requires the availability of highly accurate potential energy surfaces. Within density functional theory, these can—unfortunately—depend heavily on the exchange-correlation functional. High-level ab initio calculations, on the other hand, are challenging due to the system size and the metallic character of the metal slab. Here, we present a quantum Monte Carlo (QMC) study for the benchmark system H2 + Cu(111), focusing on the dissociative chemisorption barrier height. These computationally extremely challenging ab initio calculations agree to within 1.6 ± 1.0 kcal/mol with a chemically accurate semiempirical value. Remaining errors, such as time-step errors and locality errors, are analyzed in detail in order to assess the reliability of the results. The benchmark studies presented here are at the cutting edge of what is computationally feasible at the present time. Illustrating not only the achievable accuracy but also the challenges arising within QMC in such a calculation, our study presents a clear picture of where we stand at the moment and which approaches might allow for even more accurate results in the future.
机译:异质催化的准确建模需要高度精确的势能面的可用性。不幸的是,在密度泛函理论中,这些可以严重依赖于交换相关函数。另一方面,由于系统大小和金属板的金属特性,高级的从头算是有挑战性的。在这里,我们介绍了基准系统H2 + Cu(111)的量子蒙特卡洛(QMC)研究,重点是解离性化学吸附势垒高度。这些在计算上极富挑战性的从头算起的计算值在1.6±1.0 kcal / mol之内,具有化学精确的半经验值。为了评估结果的可靠性,将对剩余的错误(例如时间步长错误和位置错误)进行详细分析。此处介绍的基准研究处于当前在计算上可行的最前沿。我们的研究不仅说明了可达到的准确性,而且还说明了QMC在这种计算方法中所面临的挑战,我们的研究清晰地展示了我们目前所处的位置以及哪种方法可能在将来提供更准确的结果。

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