Structural motifs, mixing, and segregation effects in 38-atom binary clusters
Thirty eight-atom binary clusters composed of elements from groups 10 and 11 of the Periodic Table mixing a second-row with a third-row transition metal (TM) (i.e., clusters composed of the four pairs: Pd-Pt, Ag-Au, Pd-Au, and Ag-Pt) are studied through a combined empirical-potential (EP)/density fu...
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Veröffentlicht in: | The Journal of chemical physics 2008-04, Vol.128 (13), p.134517-134517 |
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creator | Paz-Borbón, Lauro Oliver Johnston, Roy L Barcaro, Giovanni Fortunelli, Alessandro |
description | Thirty eight-atom binary clusters composed of elements from groups 10 and 11 of the Periodic Table mixing a second-row with a third-row transition metal (TM) (i.e., clusters composed of the four pairs: Pd-Pt, Ag-Au, Pd-Au, and Ag-Pt) are studied through a combined empirical-potential (EP)/density functional (DF) method. A "system comparison" approach is adopted in order to analyze a wide diversity of structural motifs, and the energy competition among different structural motifs is studied at the DF level for these systems, mainly focusing on the composition 24-14 (the first number refers to the second-row TM atom) but also considering selected motifs with compositions 19-19 (of interest for investigating surface segregation effects) and 32-6 (also 14-24 and 6-32 for the Pd-Au pair). The results confirm the EP predictions about the stability of crystalline structures at this size for the Au-Pd pair but with decahedral or mixed fivefold-symmetric/closed-packed structures in close competition with fcc motifs for the Ag-Au or Ag-Pt and Pd-Pt pairs, respectively. Overall, the EP description is found to be reasonably accurate for the Pd-Pt and Au-Pd pairs, whereas it is less reliable for the Ag-Au and Ag-Pt pairs due to electronic structure (charge transfer or directionality) effects. The driving force to core-shell chemical ordering is put on a quantitative basis, and surface segregation of the most cohesive element into the core is confirmed, with the exception of the Ag-Au pair for which charge transfer effects favor the segregation of Au to the surface of the clusters. |
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A "system comparison" approach is adopted in order to analyze a wide diversity of structural motifs, and the energy competition among different structural motifs is studied at the DF level for these systems, mainly focusing on the composition 24-14 (the first number refers to the second-row TM atom) but also considering selected motifs with compositions 19-19 (of interest for investigating surface segregation effects) and 32-6 (also 14-24 and 6-32 for the Pd-Au pair). The results confirm the EP predictions about the stability of crystalline structures at this size for the Au-Pd pair but with decahedral or mixed fivefold-symmetric/closed-packed structures in close competition with fcc motifs for the Ag-Au or Ag-Pt and Pd-Pt pairs, respectively. Overall, the EP description is found to be reasonably accurate for the Pd-Pt and Au-Pd pairs, whereas it is less reliable for the Ag-Au and Ag-Pt pairs due to electronic structure (charge transfer or directionality) effects. 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A "system comparison" approach is adopted in order to analyze a wide diversity of structural motifs, and the energy competition among different structural motifs is studied at the DF level for these systems, mainly focusing on the composition 24-14 (the first number refers to the second-row TM atom) but also considering selected motifs with compositions 19-19 (of interest for investigating surface segregation effects) and 32-6 (also 14-24 and 6-32 for the Pd-Au pair). The results confirm the EP predictions about the stability of crystalline structures at this size for the Au-Pd pair but with decahedral or mixed fivefold-symmetric/closed-packed structures in close competition with fcc motifs for the Ag-Au or Ag-Pt and Pd-Pt pairs, respectively. Overall, the EP description is found to be reasonably accurate for the Pd-Pt and Au-Pd pairs, whereas it is less reliable for the Ag-Au and Ag-Pt pairs due to electronic structure (charge transfer or directionality) effects. The driving force to core-shell chemical ordering is put on a quantitative basis, and surface segregation of the most cohesive element into the core is confirmed, with the exception of the Ag-Au pair for which charge transfer effects favor the segregation of Au to the surface of the clusters.</description><issn>0021-9606</issn><issn>1089-7690</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2008</creationdate><recordtype>article</recordtype><recordid>eNpFkEtLAzEURoMotlYX_gHJShA69WYyzWMpxRdUXKjrIZO5KZF51CQD-u8d6YCrb3P4OBxCLhmsGAh-y1a50rLg6yMyZ6B0JoWGYzIHyFmmBYgZOYvxEwCYzItTMmOKawlKzsnLWwqDTUMwDW375F1c0tZ_-263pKaracRdwJ1Jvu8oOoc2Reo7ylVmUt_Syncm_FDbDDFhiOfkxJkm4sW0C_LxcP--ecq2r4_Pm7ttZrnK06gkhUAUsmJSKqwMMuUUCMkrLiswjulaKseZ0ooZAagAGSquLBpb2DVfkOvD7z70XwPGVLY-Wmwa02E_xFJCoaXI9QjeHEAb-hgDunIffDsqlwzKv3YlK6d2I3s1nQ5Vi_U_OcXiv6SNaHY</recordid><startdate>20080407</startdate><enddate>20080407</enddate><creator>Paz-Borbón, Lauro Oliver</creator><creator>Johnston, Roy L</creator><creator>Barcaro, Giovanni</creator><creator>Fortunelli, Alessandro</creator><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7X8</scope></search><sort><creationdate>20080407</creationdate><title>Structural motifs, mixing, and segregation effects in 38-atom binary clusters</title><author>Paz-Borbón, Lauro Oliver ; Johnston, Roy L ; Barcaro, Giovanni ; Fortunelli, Alessandro</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c382t-96766ee67b1778ebae18f80673b37b0af19d78f318981a60e80e1e838ceac4c53</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2008</creationdate><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Paz-Borbón, Lauro Oliver</creatorcontrib><creatorcontrib>Johnston, Roy L</creatorcontrib><creatorcontrib>Barcaro, Giovanni</creatorcontrib><creatorcontrib>Fortunelli, Alessandro</creatorcontrib><collection>PubMed</collection><collection>CrossRef</collection><collection>MEDLINE - Academic</collection><jtitle>The Journal of chemical physics</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Paz-Borbón, Lauro Oliver</au><au>Johnston, Roy L</au><au>Barcaro, Giovanni</au><au>Fortunelli, Alessandro</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Structural motifs, mixing, and segregation effects in 38-atom binary clusters</atitle><jtitle>The Journal of chemical physics</jtitle><addtitle>J Chem Phys</addtitle><date>2008-04-07</date><risdate>2008</risdate><volume>128</volume><issue>13</issue><spage>134517</spage><epage>134517</epage><pages>134517-134517</pages><issn>0021-9606</issn><eissn>1089-7690</eissn><abstract>Thirty eight-atom binary clusters composed of elements from groups 10 and 11 of the Periodic Table mixing a second-row with a third-row transition metal (TM) (i.e., clusters composed of the four pairs: Pd-Pt, Ag-Au, Pd-Au, and Ag-Pt) are studied through a combined empirical-potential (EP)/density functional (DF) method. A "system comparison" approach is adopted in order to analyze a wide diversity of structural motifs, and the energy competition among different structural motifs is studied at the DF level for these systems, mainly focusing on the composition 24-14 (the first number refers to the second-row TM atom) but also considering selected motifs with compositions 19-19 (of interest for investigating surface segregation effects) and 32-6 (also 14-24 and 6-32 for the Pd-Au pair). The results confirm the EP predictions about the stability of crystalline structures at this size for the Au-Pd pair but with decahedral or mixed fivefold-symmetric/closed-packed structures in close competition with fcc motifs for the Ag-Au or Ag-Pt and Pd-Pt pairs, respectively. Overall, the EP description is found to be reasonably accurate for the Pd-Pt and Au-Pd pairs, whereas it is less reliable for the Ag-Au and Ag-Pt pairs due to electronic structure (charge transfer or directionality) effects. 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title | Structural motifs, mixing, and segregation effects in 38-atom binary clusters |
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