Computational studies of chemical shifts using density functional optimized geometries.: II.: Isotropic 1H and 13C chemical shifts and substitutent effects on 13C shieldings in 2-adamantanone

被引:0
|
作者
Vikic-Topic, D
Pejov, L
机构
[1] Rudjer Boskovic Inst, NMR Ctr, HR-10002 Zagreb, Croatia
[2] Univ St Cyril & Methudius, Inst Chem, Fac Nat Sci & Math, Skopje 91001, North Macedonia
关键词
magnetic shielding; H-1 and C-13 isotropic chemical shifts; ab initio calculations; density functional theory; 2-adamantanone;
D O I
暂无
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The H-1 and C-13 isotropic chemical shifts and the substituent effects thereof (with respect to adamantane), computed at the HF, BLYP, B3LYP/6-311G(d,p) as well as at MPW1PW91/6-311+G(2d,p) levels of theory with CSGT, GIAO and IGAIM algorithms, for the BLYP/6-31G(d,p) and B3LYP/G-31G(d,p) optimized geometries of 2-adamantanone are reported and compared with the experimental data. When absolute values of isotropic chemical shifts (with respect to TMS) are in question, the MPW1PW91/6-311+G(2d,p) level leads to excellent agreement with the experiment, while the HF approach is superior to the BLYP and B3LYP ones. However, the substituent effects on 13C shieldings are better reproduced at the BLYP and B3LYP levels than at the HF level, while the MPW1PW91 approach is again significantly superior to all the others, leading to excellent agreement with experimental data. The most probable reason for these findings may be the cancellation of errors arising from the inappropriate description of the paramagnetic contributions to the overall shielding tenser within the Kohn-Sham approach, and the more systematic nature of errors in DFT approaches. The isotropic chemical shift values at all levels of theory, however, correlate excellently with the experimental data, the correlation being superior for DFT to the HF level of theory.
引用
收藏
页码:277 / 293
页数:17
相关论文
共 50 条
  • [31] DFT calculations of 1H and 13C NMR chemical shifts in transition metal hydrides
    del Rosal, I.
    Maron, L.
    Poteau, R.
    Jolibois, F.
    DALTON TRANSACTIONS, 2008, (30) : 3959 - 3970
  • [32] 1H and 13C chemical shifts of 4,5-disubstituted acridine derivatives
    Issmaili, S
    Pique, V
    Galy, JP
    Faure, R
    MAGNETIC RESONANCE IN CHEMISTRY, 1999, 37 (08) : 591 - 593
  • [34] 1H and 13C chemical shifts for bis(benzopyridinium) dibromides with semirigid aromatic linkers
    Campos, J
    Díaz, JJ
    Núñez, MC
    Entrena, A
    Gallo, MA
    Espinosa, A
    MAGNETIC RESONANCE IN CHEMISTRY, 2002, 40 (08) : 554 - 556
  • [35] Efficiently Computing NMR 1H and 13C Chemical Shifts of Saccharides in Aqueous Environment
    Palivec, Vladimir
    Pohl, Radek
    Kaminsky, Jakub
    Martinez-Seara, Hector
    JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2022, 18 (07) : 4373 - 4386
  • [36] Theoretical investigation on 1H and 13C NMR chemical shifts of small alkanes and chloroalkanes
    d'Antuono, Philippe
    Botek, Edith
    Champagne, Benoit
    Spassova, Milena
    Denkova, Pavletta
    JOURNAL OF CHEMICAL PHYSICS, 2006, 125 (14):
  • [37] Density functional theory/GIAO/CSGT studies of the 13C NMR chemical shifts in 1-chlorosilatrane
    Kim, DH
    Eun, HM
    Choi, HS
    BULLETIN OF THE KOREAN CHEMICAL SOCIETY, 2000, 21 (01) : 148 - 150
  • [38] The 1H and 13C NMR chemical shifts of Strychnos alkaloids revisited at the DFT level
    Semenov, Valentin A.
    Samultsev, Dmitry O.
    Krivdin, Leonid B.
    MAGNETIC RESONANCE IN CHEMISTRY, 2020, 58 (06) : 532 - 539
  • [39] Density functional studies of the 13C NMR chemical shifts in single-walled carbon nanotubes
    Zurek, Eva
    Autschbach, Jochen
    COMPUTATION IN MODERN SCIENCE AND ENGINEERING VOL 2, PTS A AND B, 2007, 2 : 1425 - +
  • [40] AM1 Parameters for the Prediction of 1H and 13C NMR Chemical Shifts in Proteins
    Williams, Duane E.
    Peters, Martin B.
    Wang, Bing
    Roitberg, Adrian E.
    Merz, Kenneth M., Jr.
    JOURNAL OF PHYSICAL CHEMISTRY A, 2009, 113 (43): : 11550 - 11559