Honkala K, Hellman A, Remediakis I N, Logadottir A, Carlsson A, Dahl S, Christensen C H, Nørskov J K
Center for Atomic-Scale Materials Physics, Technical University of Denmark, DK-2800 Lyngby, Denmark.
Science. 2005 Jan 28;307(5709):555-8. doi: 10.1126/science.1106435.
The rate of ammonia synthesis over a nanoparticle ruthenium catalyst can be calculated directly on the basis of a quantum chemical treatment of the problem using density functional theory. We compared the results to measured rates over a ruthenium catalyst supported on magnesium aluminum spinel. When the size distribution of ruthenium particles measured by transmission electron microscopy was used as the link between the catalyst material and the theoretical treatment, the calculated rate was within a factor of 3 to 20 of the experimental rate. This offers hope for computer-based methods in the search for catalysts.
基于使用密度泛函理论对该问题进行的量子化学处理,可以直接计算纳米颗粒钌催化剂上的氨合成速率。我们将结果与负载在镁铝尖晶石上的钌催化剂的测量速率进行了比较。当使用透射电子显微镜测量的钌颗粒尺寸分布作为催化剂材料与理论处理之间的联系时,计算出的速率在实验速率的3至20倍范围内。这为基于计算机的催化剂搜索方法带来了希望。