Literature DB >> 20449360

Theory of nitride oxide adsorption on transition metal (111) surfaces: a first-principles investigation.

Zhen-Hua Zeng1, Juarez L F Da Silva, Wei-Xue Li.   

Abstract

In this work, we report a density functional theory study of nitric oxide (NO) adsorption on close-packed transition metal (TM) Rh(111), Ir(111), Pd(111) and Pt(111) surfaces in terms of adsorption sites, binding mechanism and charge transfer at a coverage of Theta(NO) = 0.25, 0.50, 0.75 monolayer (ML). Based on our study, an unified picture for the interaction between NO and TM(111) and site preference is established, and valuable insights are obtained. At low coverage (0.25 ML), we find that the interaction of NO/TM(111) is determined by an electron donation and back-donation process via the interplay between NO 5sigma/2pi* and TM d-bands. The extent of the donation and back-donation depends critically on the coordination number (adsorption sites) and TM d-band filling, and plays an essential role for NO adsorption on TM surfaces. DFT calculations shows that for TMs with high d-band filling such as Pd and Pt, hollow-site NO is energetically the most favorable, and top-site NO prefers to tilt away from the normal direction. While for TMs with low d-band filling (Rh and Ir), top-site NO perpendicular to the surfaces is energetically most favorable. Electronic structure analysis show that irrespective of the TM and adsorption site, there is a net charge transfer from the substrate to the adsorbate due to overwhelming back-donation from the TM substrate to the adsorbed NO molecules. The adsorption-induced change of the work function with respect to bare surfaces and dipole moment is however site dependent, and the work function increases for hollow-site NO, but decreases for top-site NO, because of differences in the charge redistribution. The interplay between the energetics, lateral interaction and charge transfer, which is element dependent, rationalizes the structural evolution of NO adsorption on TM(111) surfaces in the submonolayer regime.

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Year:  2010        PMID: 20449360     DOI: 10.1039/b920857g

Source DB:  PubMed          Journal:  Phys Chem Chem Phys        ISSN: 1463-9076            Impact factor:   3.676


  4 in total

1.  Octahedral Ni-nanocluster (Ni85) for Efficient and Selective Reduction of Nitric Oxide (NO) to Nitrogen (N2).

Authors:  Arup Mahata; Kuber Singh Rawat; Indrani Choudhuri; Biswarup Pathak
Journal:  Sci Rep       Date:  2016-05-09       Impact factor: 4.379

Review 2.  Multiscale atomistic simulation of metal nanoparticles under working conditions.

Authors:  Jifeng Du; Jun Meng; Xiao-Yan Li; Beien Zhu; Yi Gao
Journal:  Nanoscale Adv       Date:  2019-06-11

3.  NO Binding Energies to and Diffusion Barrier on Pd Obtained with Velocity-Resolved Kinetics.

Authors:  Dmitriy Borodin; Igor Rahinov; Jan Fingerhut; Michael Schwarzer; Stefan Hörandl; Georgios Skoulatakis; Dirk Schwarzer; Theofanis N Kitsopoulos; Alec M Wodtke
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2021-05-24       Impact factor: 4.126

4.  Comprehensive Experimental and Theoretical Study of the CO + NO Reaction Catalyzed by Au/Ni Nanoparticles.

Authors:  Georgios Kyriakou; Antonio M Márquez; Juan Pedro Holgado; Martin J Taylor; Andrew E H Wheatley; Joshua P Mehta; Javier Fernández Sanz; Simon K Beaumont; Richard M Lambert
Journal:  ACS Catal       Date:  2019-04-19       Impact factor: 13.084

  4 in total

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