Literature DB >> 28799402

Adsorption of dysprosium on the graphite (0001) surface: Nucleation and growth at 300 K.

Emma J Kwolek1, Huaping Lei1, Ann Lii-Rosales1, Mark Wallingford1, Yinghui Zhou1, Cai-Zhuang Wang1, Michael C Tringides1, James W Evans1, Patricia A Thiel1.   

Abstract

We have studied nucleation and growth of Dy islands on the basal plane of graphite at 300 K using scanning tunneling microscopy, density functional theory (DFT) in a form that includes van der Waals interactions, and analytic theory. The interaction of atomic Dy with graphite is strong, while the diffusion barrier is small. Experiment shows that at 300 K, the density of nucleated islands is close to the value predicted for homogeneous nucleation, using critical nucleus size of 1 and the DFT-derived diffusion barrier. Homogeneous nucleation is also supported by the monomodal shape of the island size distributions. Comparison with the published island density of Dy on graphene shows that the value is about two orders of magnitude smaller on graphite, which can be attributed to more effective charge screening in graphite. The base of each island is 3 atomic layers high and atomically ordered, forming a coincidence lattice with the graphite. Islands resist coalescence, probably due to multiple rotational orientations associated with the coincidence lattice. Upper levels grow as discernible single-atom layers. Analysis of the level populations reveals significant downward interlayer transport, which facilitates growth of the base. This island shape is metastable, since more compact three-dimensional islands form at elevated growth temperature.

Entities:  

Year:  2016        PMID: 28799402     DOI: 10.1063/1.4953611

Source DB:  PubMed          Journal:  J Chem Phys        ISSN: 0021-9606            Impact factor:   3.488


  1 in total

1.  Spontaneous selective deposition of iron oxide nanoparticles on graphite as model catalysts.

Authors:  Chathura de Alwis; Timothy R Leftwich; Pinaki Mukherjee; Alex Denofre; Kathryn A Perrine
Journal:  Nanoscale Adv       Date:  2019-10-02
  1 in total

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