Sonti Siddharth, Sun Chenghan, Chen Zekun, Kowalski Robert Michael, Kowalski Joseph S, Donadio Davide, Ahn Surl-Hee, Kulkarni Ambarish R
Department of Chemical Engineering, University of California, Davis, Davis, California 95616, United States.
Department of Chemistry, University of California, Davis, Davis, California 95616, United States.
J Chem Theory Comput. 2024 Sep 12;20(18):8261-9. doi: 10.1021/acs.jctc.4c00978.
Nanoengineered metal@zeolite materials have recently emerged as a promising class of catalysts for several industrially relevant reactions. These materials, which consist of small transition metal nanoclusters confined within three-dimensional zeolite pores, are interesting because they show higher stability and better sintering resistance under reaction conditions. While several such hybrid catalysts have been reported experimentally, key questions such as the impact of the zeolite frameworks on the properties of the metal clusters are not well understood. To address such knowledge gaps, in this study, we report a robust and transferable machine learning-based potential (MLP) that is capable of describing the structure, stability, and dynamics of zeolite-confined gold nanoclusters. Specifically, we show that the resulting MLP maintains accuracy across a range of temperatures (300-1000 K) and can be used to investigate time scales (>10 ns), length scales (ca. 10,000 atoms), and phenomena (e.g., ensemble-averaged stability and diffusivity) that are typically inaccessible using density functional theory (DFT). Taken together, this study represents an important step in enabling the rational theory-guided design of metal@zeolite catalysts.
纳米工程金属@沸石材料最近已成为一类有前途的催化剂,可用于多种与工业相关的反应。这些材料由限制在三维沸石孔内的小过渡金属纳米团簇组成,因其在反应条件下表现出更高的稳定性和更好的抗烧结性而备受关注。虽然已经通过实验报道了几种这样的混合催化剂,但诸如沸石骨架对金属团簇性质的影响等关键问题尚未得到很好的理解。为了解决这些知识空白,在本研究中,我们报告了一种强大且可转移的基于机器学习的势(MLP),它能够描述沸石限制的金纳米团簇的结构、稳定性和动力学。具体而言,我们表明所得的MLP在一系列温度(300 - 1000 K)范围内保持准确性,可用于研究通常使用密度泛函理论(DFT)无法达到的时间尺度(>10 ns)、长度尺度(约10,000个原子)和现象(例如系综平均稳定性和扩散率)。综上所述,本研究代表了在实现金属@沸石催化剂的合理理论指导设计方面迈出的重要一步。