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DFT study of arsine adsorption on palladium doped graphene: Effects of palladium cluster size
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Metadata
Document Title
DFT study of arsine adsorption on palladium doped graphene: Effects of palladium cluster size
Author
Kunaseth M, Mudchimo T, Namuangruk S, Kungwan N, Promarak V, Jungsuttiwong S
Name from Authors Collection
Affiliations
National Science & Technology Development Agency - Thailand; National Nanotechnology Center (NANOTEC); Ubon Ratchathani University; Ubon Ratchathani University; Chiang Mai University; Vidyasirimedhi Institute of Science & Technology
Type
Article
Source Title
APPLIED SURFACE SCIENCE
Year
2016
Volume
367
Page
552-558
Open Access
Bronze
Publisher
ELSEVIER SCIENCE BV
DOI
10.1016/j.apsusc.2016.01.139
Format
Abstract
In this study, we have investigated the size effects of palladium (Pd) doped single-vacancy defective graphene (SDG) surface to the adsorption of AsH3 and its dehydrogenated products on Pd using density functional theory calculations. Here, Pd cluster binding study revealed that Pd-6 nanocluster bound strongest to the SDG surface, while adsorption of As1-1, (x=0-3) on the most stable Pd-n, doped SDG showed that dehydrogenated arsine compounds adsorbed onto the surface stronger than the pristine AsH3 molecule. Charge analysis revealed that considerable amount of charge migration from Pd to dehydrogenated arsine molecules after adsorption may constitute strong adsorption for dehydrogenated arsine. In addition, study of thermodynamic pathways of AsH3 dehydrogenation on Pd,, doped SDG adsorbents indicated that Pd cluster doping on SDG adsorbent tends to be thermodynamically favorable for AsH3 decomposition than the single-Pd atom doped SDG. Hence, our study has indicated that Pd-6 clusters doped SDG is more advantageous as adsorbent material for AsH3 removal. (C) 2016 Elsevier B.V. All rights reserved.
Keyword
Adsorbent | Arsine removal | Cluster size | Defective graphene | Density functional theory | Pd cluster
Industrial Classification
Knowledge Taxonomy Level 1
Knowledge Taxonomy Level 2
Knowledge Taxonomy Level 3
Funding Sponsor
Center of Excellence for Innovation in Chemistry (PERCH-CIC); Office of the Higher Education Commission; Ministry of Education; NANOTEC Flagship Research Program for Clean Air
Publication Source
WOS