Alvarado-Leal L A, Paez-Ornelas J I, Ruiz-Robles M A, Guerrero-Sánchez J, Romo-Herrera J M, Fernández-Escamilla H N, Takeuchi Noboru, Perez-Tijerina E G
CICFIM Facultad de Ciencias Físico Matemáticas, Universidad Autónoma de Nuevo León, San Nicolás de los Garza, Nuevo León, Código Postal 66450, Mexico.
Centro de Nanociencias y Nanotecnología, Universidad Nacional Autónoma de México, Apartado Postal 14, Ensenada Baja California, Código Postal 22800, Mexico.
Nanoscale. 2024 Nov 21;16(45):20955-20967. doi: 10.1039/d4nr02713b.
The controlled growth and stability of transition metal clusters on N-doped materials have become the subject of intense investigation for unveiling comprehension on the cluster growth evolution. In this study, we investigated the growth mechanisms of non-magnetic (copper) and magnetic (iron) clusters on graphene with two atomic vacancies, with and without pyridinic nitrogen (N). Our results determine the role of pyridinic N in the growth and physicochemical properties of the mentioned metal clusters. In an N environment, Cu grows perpendicularly, whereas under N-deficient conditions, the clusters agglomerate. Fe cumulate-type clusters are formed regardless of the presence of N. However, N causes the Fe clusters to rise over one side of the surface without deforming the monolayer; meanwhile, in the absence of N, the Fe clusters protrude from both sides of the monolayer. Remarkably, the presence of N makes it feasible to induce magnetization in the Cu-NV systems and aid in focalizing the magnetic properties on the Fe clusters for the Fe-NV case. These findings offer insights into the role of N in cluster growth, with potential implications for diverse applications, including magnetic and electrocatalytic materials.
过渡金属团簇在氮掺杂材料上的可控生长和稳定性已成为深入研究的课题,以揭示团簇生长演变的理解。在本研究中,我们研究了具有两个原子空位的石墨烯上非磁性(铜)和磁性(铁)团簇在有和没有吡啶氮(N)的情况下的生长机制。我们的结果确定了吡啶氮在上述金属团簇的生长和物理化学性质中的作用。在N环境中,Cu垂直生长,而在N缺乏条件下,团簇会聚集。无论是否存在N,都会形成Fe累积型团簇。然而,N会使Fe团簇在表面的一侧上升而不会使单层变形;同时,在没有N的情况下,Fe团簇从单层的两侧突出。值得注意的是,N的存在使得在Cu-NV系统中诱导磁化成为可能,并有助于将磁性聚焦在Fe-NV情况下的Fe团簇上。这些发现为N在团簇生长中的作用提供了见解,对包括磁性和电催化材料在内的各种应用具有潜在影响。