(Noble Gas)n-NC+ Molecular Ions in Noble Gas Matrices: Matrix Infrared Spectra and Electronic Structure Calculations

被引:0
|
作者
Tsegaw, Yetsedaw A. [1 ]
Li, Hongmin [1 ]
Andrews, Lester [2 ]
Cho, Han-Gook [3 ]
Vossnacker, Patrick [1 ]
Beckers, Helmut [1 ]
Riedel, Sebastian [1 ]
机构
[1] Free Univ Berlin, Inst Chem & Biochem, Anorgan Chem, Fabeckstr 34-36, D-14195 Berlin, Germany
[2] Univ Virginia, Dept Chem, Charlottesville, VA 22904 USA
[3] Incheon Natl Univ, Dept Chem, 119 Acad Ro, Incheon 22012, South Korea
关键词
noble gases; cyanide cations; electronic structure calculations; IR probes; laser ablation; mercury; SOLID ARGON; HYDROGEN; PHOTOLYSIS; FLUORIDE; NEON; CN;
D O I
10.1002/chem.202103142
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
An investigation of pulsed-laser-ablated Zn, Cd and Hg metal atom reactions with HCN under excess argon during co-deposition with laser-ablated Hg atoms from a dental amalgam target also provided Hg emissions capable of photoionization of the CN photo-dissociation product. A new band at 1933.4 cm(-1) in the region of the CN and CN+ gas-phase fundamental absorptions that appeared upon annealing the matrix to 20 K after sample deposition, and disappeared upon UV photolysis is assigned to (Ar)(n)CN+, our key finding. It is not possible to determine the n coefficient exactly, but structure calculations suggest that one, two, three or four argon atoms can solvate the CN+ cation in an argon matrix with C-N absorptions calculated (B3LYP) to be between 2317.2 and 2319.8 cm(-1). Similar bands were observed in solid krypton at 1920.5, in solid xenon at 1935.4 and in solid neon at 1947.8 cm(-1). (HCN)-C-13 reagent gave an 1892.3 absorption with shift instead, and a 12/13 isotopic frequency ratio-nearly the same as found for (CN+)-C-13 itself in the gas phase and in the argon matrix. The CN+ molecular ion serves as a useful infrared probe to examine Ng clusters. The following ion reactions are believed to occur here: the first step upon sample deposition is assisted by a focused pulsed YAG laser, and the second step occurs on sample annealing: (Ar)(2)(+)+CN -> Ar+CN+->(Ar)(n)CN+.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] (Noble Gas)n-NC+ Molecular Ions in Noble Gas Matrices: Matrix Infrared Spectra and Electronic Structure Calculations
    Tsegaw, Yetsedaw A.
    Li, Hongmin
    Andrews, Lester
    Cho, Han-Gook
    Voßnacker, Patrick
    Beckers, Helmut
    Riedel, Sebastian
    Chemistry - A European Journal, 2022, 28 (05):
  • [2] Infrared spectra of formic acid clusters in noble gas matrices
    Ito, Fumiyuki
    JOURNAL OF MOLECULAR STRUCTURE, 2015, 1091 : 203 - 209
  • [3] SPECTROSCOPY OF MOLECULAR-IONS IN NOBLE-GAS MATRICES
    ANDREWS, L
    ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 1979, 30 : 79 - 101
  • [4] Infrared spectroscopy of isoprene in noble gas matrices
    Ito, Fumiyuki
    JOURNAL OF MOLECULAR SPECTROSCOPY, 2018, 348 : 117 - 123
  • [5] ELECTRONIC-STRUCTURE OF THE NOBLE-GAS DIMER IONS
    MICHELS, HH
    HOBBS, RH
    WRIGHT, LA
    INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 1978, 12 : 257 - 269
  • [6] Infrared Spectroscopic and Electronic Structure Investigations of Beryllium Halide Molecules, Cations, and Anions in Noble Gas Matrices
    Yu, Wenjie
    Andrews, Lester
    Wang, Xuefeng
    JOURNAL OF PHYSICAL CHEMISTRY A, 2017, 121 (46): : 8843 - 8855
  • [7] ELECTRONIC-STRUCTURE OF NOBLE-GAS DIMER AND TRIMER IONS
    MICHELS, HH
    HOBBS, RH
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1979, (APR): : 414 - 414
  • [8] Methanesulfonyl Azide: Molecular Structure and Photolysis in Solid Noble Gas Matrices
    Deng, Guohai
    Li, Dingqing
    Wu, Zhuang
    Li, Hongmin
    Bernhardt, Eduard
    Zeng, Xiaoqing
    JOURNAL OF PHYSICAL CHEMISTRY A, 2016, 120 (28): : 5590 - 5597
  • [9] NOBLE-GAS MOLECULAR-IONS
    COOPER, DL
    WILSON, S
    MOLECULAR PHYSICS, 1981, 44 (01) : 161 - 172
  • [10] Noble gas matrix effects on the symmetric stretching transition structure of the XNgY noble gas molecules: Theoretical understanding the noble gas matrix stabilizing effects
    Liu, Guoqun
    Zhang, Wangxi
    Zhang, Xianxi
    He, Tao
    Cheng, Jianbo
    COMPUTATIONAL AND THEORETICAL CHEMISTRY, 2014, 1028 : 46 - 59