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  • Nguyen, Minh Tho  (3)
  • Tung, Nguyen Thanh  (3)
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  • 1
    Online Resource
    Online Resource
    Royal Society of Chemistry (RSC) ; 2021
    In:  RSC Advances Vol. 11, No. 63 ( 2021), p. 40072-40084
    In: RSC Advances, Royal Society of Chemistry (RSC), Vol. 11, No. 63 ( 2021), p. 40072-40084
    Abstract: Geometrical and electronic structures of the 13-atom clusters Al x Sc y with x + y = 13, as well as their thermodynamic stabilities were investigated using DFT calculations. Both anionic and neutral isomers of Al x Sc y were found to retain an icosahedral shape of both Al 13 and Sc 13 systems in which an Al atom occupies the endohedral central position of the icosahedral cage, irrespective of the number of Al atoms present. Such a phenomenon occurs to maximize the number of stronger Al–Al and Sc–Al bonds instead of the weaker Sc–Sc bonds. NBO analyses were applied to examine their electron configurations and rationalize the large number of open shells and thereby high multiplicities of the mixed clusters having more than three Sc atoms. The SOMOs are the molecular orbitals belonged to the irreducible representations of the symmetry point group of the clusters studied, rather than to the cluster electron shells. Evaluation of the average binding energies showed that the thermodynamic stability of Al x Sc y clusters is insignificantly altered as the number y goes from 0 to 7 and then steadily decreases when y attains the 7–13 range. Increase of the Sc atom number also reduces the electron affinities of the binary Al x Sc y clusters, and thus they gradually lose the superhalogen characteristics with respect to the pure Al 13 .
    Type of Medium: Online Resource
    ISSN: 2046-2069
    Language: English
    Publisher: Royal Society of Chemistry (RSC)
    Publication Date: 2021
    detail.hit.zdb_id: 2623224-8
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  • 2
    In: RSC Advances, Royal Society of Chemistry (RSC), Vol. 12, No. 2 ( 2022), p. 719-719
    Abstract: Correction for ‘The binary aluminum scandium clusters Al x Sc y with x + y = 13: when is the icosahedron retained?’ by Ngo Tuan Cuong et al. , RSC Adv. , 2021, 11 , 40072–40084. DOI: 10.1039/D1RA06994B.
    Type of Medium: Online Resource
    ISSN: 2046-2069
    Language: English
    Publisher: Royal Society of Chemistry (RSC)
    Publication Date: 2022
    detail.hit.zdb_id: 2623224-8
    Location Call Number Limitation Availability
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  • 3
    Online Resource
    Online Resource
    Royal Society of Chemistry (RSC) ; 2022
    In:  RSC Advances Vol. 12, No. 21 ( 2022), p. 13487-13499
    In: RSC Advances, Royal Society of Chemistry (RSC), Vol. 12, No. 21 ( 2022), p. 13487-13499
    Abstract: A theoretical study of geometric and electronic structures, stability and magnetic properties of both neutral and anionic Ge 16 M 0/− clusters with M being a first-row 3d transition metal atom, is performed using quantum chemical approaches. Both the isoelectronic Ge 16 Sc − anion and neutral Ge 16 Ti that have a perfect Frank–Kasper tetrahedral T d shape and an electron shell filled with 68 valence electrons, emerge as magic clusters with an enhanced thermodynamic stability. The latter can be rationalized by the simple Jellium model. Geometric distortions from the Frank–Kasper tetrahedron of Ge 16 M having more or less than 68 valence electrons can be understood by a Jahn–Teller effect. Remarkably, DFT calculations reveal that both neutral Ge 16 Sc and Ge 16 Cu can be considered as superhalogens as their electron affinities (≥3.6 eV) exceed the value of the halogen atoms and even that of icosahedral Al 13 . A detailed view of the magnetic behavior of Ge 16 M 0/− clusters shows that the magnetic moments of the atomic metals remain large even when they are quenched upon doping. When M goes from Sc to Zn, the total spin magnetic moment of Ge 16 M 0/− increases steadily and reaches the maximum value of 3 μ B with M = Mn before decreasing towards the end of the first-row 3d block metals. Furthermore, the IR spectra of some tetrahedral Ge 16 M are also predicted.
    Type of Medium: Online Resource
    ISSN: 2046-2069
    Language: English
    Publisher: Royal Society of Chemistry (RSC)
    Publication Date: 2022
    detail.hit.zdb_id: 2623224-8
    Location Call Number Limitation Availability
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