Hai-Ru Li
Shanxi University
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Publication
Featured researches published by Hai-Ru Li.
ACS Nano | 2015
Qiang Chen; Wei-Li Li; Ya-Fan Zhao; Su-Yan Zhang; Han-Shi Hu; Hui Bai; Hai-Ru Li; Wen-Juan Tian; Hai-Gang Lu; Hua-Jin Zhai; Si-Dian Li; Jun Li; Lai-Sheng Wang
Chirality plays an important role in chemistry, biology, and materials science. The recent discovery of the B40(-/0) borospherenes marks the onset of a class of boron-based nanostructures. Here we report the observation of axially chiral borospherene in the B(39)(-) nanocluster on the bases of photoelectron spectroscopy, global minimum searches, and electronic structure calculations. Extensive structural searches in combination with density functional and CCSD(T) calculations show that B(39)(-) has a C3 cage global minimum with a close-lying C2 cage isomer. Both the C3 and C2 B(39)(-) cages are chiral with degenerate enantiomers. The C3 global minimum consists of three hexagons and three heptagons around the vertical C3 axis. The C2 isomer is built on two hexagons on the top and at the bottom of the cage with four heptagons around the waist. Both the C3 and C2 axially chiral isomers of B(39)(-) are present in the experiment and contribute to the observed photoelectron spectrum. The chiral borospherenes also exhibit three-dimensional aromaticity, featuring σ and π double delocalization for all valence electrons. Molecular dynamics simulations reveal that these chiral B(39)(-) cages are structurally fluxional above room temperature, compared to the highly robust D(2d)B40 borospherene. The current findings add chiral members to the borospherene family and indicate the structural diversity of boron-based nanomaterials.
Angewandte Chemie | 2015
Qiang Chen; Su-Yan Zhang; Hui Bai; Wen-Juan Tian; Ting Gao; Hai-Ru Li; Chang-Qing Miao; Yue-Wen Mu; Hai-Gang Lu; Hua-Jin Zhai; Si-Dian Li
The newly discovered borospherenes B40 (-/0) and B39 (-) mark the onset of a new class of boron nanostructures. Based on extensive first-principles calculations, we introduce herein two new chiral members to the borospherene family: the cage-like C1 B41 (+) (1) and C2 B42 (2+) (2), both of which are the global minima of the systems with degenerate enantiomers. These chiral borospherene cations are composed of twelve interwoven boron double chains with six hexagonal and heptagonal faces and may be viewed as the cuborenes analogous to cubane (C8 H8 ). Chemical bonding analyses show that there exists a three-center two-electron σ bond on each B3 triangle and twelve multicenter two-electron π bonds over the σ skeleton. Molecular dynamics simulations indicate that C1 B41 (+) (1) fluctuates above 300 K, whereas C2 B42 (2+) (2) remains dynamically stable. The infrared and Raman spectra of these borospherene cations are predicted to facilitate their experimental characterizations.
Scientific Reports | 2017
Hai-Ru Li; Xin-Xin Tian; Xue-Mei Luo; Miao Yan; Yue-Wen Mu; Hai-Gang Lu; Si-Dian Li
With inspirations from recent discoveries of the cage-like borospherene B40 and perfectly planar Co ∈ B18− and based on extensive global minimum searches and first-principles theory calculations, we present herein the possibility of the novel planar Ni ∈ B18 (1), cage-like heteroborospherenes Nin ∈ B40 (n = 1–4) (2–5), and planar heteroborophenes Ni2 ∈ B14 (6, 7) which all contain planar or quasi-planar heptacoordinate transition-metal (phTM) centers in η7-B7 heptagons. The nearly degenerate Ni2 ∈ B14 (6) and Ni2 ∈ B14 (7) monolayers are predicted to be metallic in nature, with Ni2 ∈ B14 (6) composed of interwoven boron double chains with two phNi centers per unit cell being the precursor of cage-like Nin ∈ B40 (n = 1–4) (2–5). Detailed bonding analyses indicate that Nin ∈ B40 (n = 1–4) (2–5) and Ni2 ∈ B14 (6, 7) possess the universal bonding pattern of σ + π double delocalization on the boron frameworks, with each phNi forming three lone pairs in radial direction (3dz22, 3dzx2, and 3dyz2) and two effective nearly in-plane 8c-2e σ-coordination bonds between the remaining tangential Ni 3d orbitals (3dx2−y2 and 3dxy) and the η7-B7 heptagon around it. The IR, Raman, and UV-vis absorption spectra of 1–5 are computationally simulated to facilitate their experimental characterizations.
Journal of Computational Chemistry | 2018
Miao Yan; Hai-Ru Li; Xiao-Yun Zhao; Xiao-Qin Lu; Yue-Wen Mu; Hai-Gang Lu; Si-Dian Li
Based on detailed bonding analyses on the fluxional behaviors of planar B19−, tubular Ta@B20−, and cage‐like B39−, we propose the concept of fluxional bonds in boron nanoclusters as an extension of the classical localized bonds and delocalized bonds in chemistry.
Physical Chemistry Chemical Physics | 2016
Hai-Ru Li; Tian Jian; Wei-Li Li; Chang-Qing Miao; Ying-Jin Wang; Qiang Chen; Xue-Mei Luo; Kang Wang; Hua-Jin Zhai; Si-Dian Li; Lai-Sheng Wang
Physical Chemistry Chemical Physics | 2016
Qiang Chen; Hai-Ru Li; Chang-Qing Miao; Ying-Jin Wang; Hai-Gang Lu; Yue-Wen Mu; Guang-Ming Ren; Hua-Jin Zhai; Si-Dian Li
Physical Chemistry Chemical Physics | 2016
Wen-Juan Tian; Qiang Chen; Hai-Ru Li; Miao Yan; Yue-Wen Mu; Hai-Gang Lu; Hua-Jin Zhai; Si-Dian Li
Chemical Communications | 2017
Wan-Lu Li; Tian Jian; Xin Chen; Hai-Ru Li; Teng-Teng Chen; Xue-Mei Luo; Si-Dian Li; Jun Li; Lai-Sheng Wang
Physical Chemistry Chemical Physics | 2015
Qiang Chen; Ting Gao; Wen-Juan Tian; Hui Bai; Su-Yan Zhang; Hai-Ru Li; Chang-Qing Miao; Yue-Wen Mu; Hai-Gang Lu; Hua-Jin Zhai; Si-Dian Li
Physical Chemistry Chemical Physics | 2016
Qiang Chen; Hai-Ru Li; Wen-Juan Tian; Hai-Gang Lu; Hua-Jin Zhai; Si-Dian Li