Literature DB >> 17760444

Structure, stability, and cluster-cage interactions in nitride clusterfullerenes M3N@C2n (M = Sc, Y; 2n = 68-98): a density functional theory study.

Alexey A Popov1, Lothar Dunsch.   

Abstract

Extensive semiempirical calculations of the hexaanions of IPR (isolated pentagon rule) and non-IPR isomers of C(68)-C(88) and IPR isomers of C(90)-C(98) followed by DFT calculations of the lowest energy structures were performed to find the carbon cages that can provide the most stable isomers of M(3)N@C(2n) clustern class="Chemical">fullerenes (M = Sc, Y) with Y as a model for rare earth ions. DFT calculations of isomers of M(3)N@C(2n) (M = Sc, Y; 2n = 68-98) based on the most stable C(2n)(6-) cages were also performed. The lowest energy isomers found by this methodology for Sc(3)N@C(68), Sc(3)N@C(78), Sc(3)N@C(80), Y(3)N@C(78), Y(3)N@C(80), Y(3)N@C(84), Y(3)N@C(86), and Y(3)N@C(88) are those that have been shown to exist by single-crystal X-ray studies as Sc(3)N@C(2n) (2n = 68, 78, 80), Dy(3)N@C(80), and Tb(3)N@C(2n) (2n = 80, 84, 86, 88) clusterfullerenes. Reassignment of the carbon cage of Sc(2)@C(76) to the non-IPR Cs: 17490 isomer is also proposed. The stability of nitride clusterfullerenes was found to correlate well with the stability of the empty 6-fold charged cages. However, the dimensions of the cage in terms of its ability to encapsulate M(3)N clusters were also found to be an important factor, especially for the medium size cages and the large Y(3)N cluster. In some cases the most stable structures are based on the different cage isomers for Sc(3)N and Y(3)N clusters. Up to the cage size of C(84), non-IPR isomers of C(2n)(6-) and M(3)N@C(2n) were found to compete with or to be even more stable than IPR isomers. However, the number of adjacent pentagon pairs in the most stable non-IPR isomers decreases as cage size increases: the most stable M(3)N@C(2n) isomers have three such pairs for 2n = 68-72, two pairs for n = 74-80, and only one pair for n = 82, 84. For C(86) and C(88) the lowest energy IPR isomers are much more stable than any non-IPR isomer. The trends in the stability of the fullerene isomers and the cluster-cage binding energies are discussed, and general rules for stability of clusterfullerenes are established. Finally, the high yield of M(3)N@C(80) (Ih) clusterfullerenes for any metal is explained by the exceptional stability of the C(80)(6-) (Ih: 31924) cage, rationalized by the optimum distribution of the pentagons leading to the minimization of the steric strain, and structural similarities of C(80) (Ih: 31924) with the lowest energy non-IPR isomers of C(760(6-), C(78)(6-), C(82)(6-), and C(84)(6-) pointed out.

Entities:  

Year:  2007        PMID: 17760444     DOI: 10.1021/ja073809l

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  13 in total

1.  Theoretical study on monometallic cyanide cluster fullerenes MCN@C74 (M=Y, Tb).

Authors:  Xu Gao; Li-Juan Zhao; Dong-Lai Wang
Journal:  J Mol Model       Date:  2015-10-30       Impact factor: 1.810

Review 2.  The stabilization of fused-pentagon fullerene molecules.

Authors:  Yuan-Zhi Tan; Su-Yuan Xie; Rong-Bin Huang; Lan-Sun Zheng
Journal:  Nat Chem       Date:  2009-08-24       Impact factor: 24.427

3.  Electronic properties and 13C NMR structural study of Y3N@C88.

Authors:  Wujun Fu; Jianyuan Zhang; Hunter Champion; Tim Fuhrer; Hugo Azuremendi; Tianming Zuo; Jianfei Zhang; Kim Harich; Harry C Dorn
Journal:  Inorg Chem       Date:  2011-04-20       Impact factor: 5.165

4.  Comparing Empty and Filled Fullerene Cages with High-Resolution Trapped Ion Mobility Spectrometry.

Authors:  Frank Hennrich; Erik Schneider; Patrick Weis; Manfred M Kappes
Journal:  J Am Soc Mass Spectrom       Date:  2019-06-25       Impact factor: 3.109

5.  Self-driven carbon atom implantation into fullerene embedding metal-carbon cluster.

Authors:  Runnan Guan; Zuo-Chang Chen; Jing Huang; Han-Rui Tian; Jinpeng Xin; Si-Wei Ying; Muqing Chen; Qianyan Zhang; Qunxiang Li; Su-Yuan Xie; Lan-Sun Zheng; Shangfeng Yang
Journal:  Proc Natl Acad Sci U S A       Date:  2022-09-19       Impact factor: 12.779

6.  Cage connectivity and frontier π orbitals govern the relative stability of charged fullerene isomers.

Authors:  Yang Wang; Sergio Díaz-Tendero; Manuel Alcamí; Fernando Martín
Journal:  Nat Chem       Date:  2015-10-19       Impact factor: 24.427

7.  Isolation and structural characterization of two very large, and largely empty, endohedral fullerenes: Tm@C(3v)-C(94) and Ca@C(3v)-C(94).

Authors:  Yuliang Che; Hua Yang; Zhimin Wang; Hongxiao Jin; Ziyang Liu; Chunxin Lu; Tianming Zuo; Harry C Dorn; Christine M Beavers; Marilyn M Olmstead; Alan L Balch
Journal:  Inorg Chem       Date:  2009-07-06       Impact factor: 5.165

8.  Defect induced electronic structure of uranofullerene.

Authors:  Xing Dai; Cheng Cheng; Wei Zhang; Minsi Xin; Ping Huai; Ruiqin Zhang; Zhigang Wang
Journal:  Sci Rep       Date:  2013       Impact factor: 4.379

9.  Molecular magnetic switch for a metallofullerene.

Authors:  Bo Wu; Taishan Wang; Yongqiang Feng; Zhuxia Zhang; Li Jiang; Chunru Wang
Journal:  Nat Commun       Date:  2015-03-03       Impact factor: 14.919

10.  Structural, Electronic, and Nonlinear Optical Properties of C66H4 and C70Cl6 Encapsulating Li and F Atoms.

Authors:  Ying Zhang; Zhao Zheng; Yitao Si; Baisheng Sa; Hengyi Li; Tao Yu; Cuilian Wen; Bo Wu
Journal:  ACS Omega       Date:  2021-06-14
View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.