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Initial Carbonation of Ni(111) Surfaces
Jennifer Sanchez1, Bipin Lamichhane2, Kevin Sutherland1
1Department of Chemistry, The University of Texas at San Antonio, San Antonio, Texas 78249, United States.
Understanding carbon formation on nickel (Ni) surfaces is key for nanofabrication and catalysis. This study reveals site-selective carbon adsorption, differentiating between carbide precursors and graphene clusters on Ni(111).
Area of Science:
- Surface science
- Materials science
- Catalysis
Background:
- Controlling carbon formation on nickel (Ni) surfaces is crucial for Ni-based nanofabrication and heterogeneous catalysis.
- The high solubility and complex migration of carbon in Ni present experimental challenges in understanding initial carbonation at the atomic level.
Purpose of the Study:
- To investigate the initial formation of surface carbon adsorbates on Ni(111) using the Boudouard reaction.
- To elucidate the atomic-level mechanisms governing carbon adsorption and its implications for carbide and graphene formation.
Main Methods:
- Scanning Tunneling Microscopy (STM) for atomic-scale surface imaging.
- Density Functional Theory (DFT) calculations to model carbon adsorption energetics and kinetics.
- Experimental studies extended to Ni(110) and Ni(211) surfaces under varying conditions.
Main Results:
- Initial carbon adsorption is site-selective on Ni(111): strong bonding at step edges (carbide precursor) and weaker, mobile adsorption on terraces (graphene clusters).
- The kinetics of carbon adsorption differ between step and terrace sites, influencing subsequent growth pathways.
- New evidence resolves the atomic structure of the (√39 × √39) R16.1° Ni carbide.
Conclusions:
- The study provides fundamental insights into the initial stages of carbon formation on Ni surfaces.
- Understanding site-selective adsorption and kinetics is vital for controlling the growth of nickel carbide or graphene.
- The findings offer valuable guidance for controlling carbon-nickel interactions in catalysis and nanofabrication.
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