Computation of 31P NMR chemical shifts in Keggin-based lacunary polyoxotungstates

被引:0
|
作者
Thompson, Jake A. [1 ]
Vila-Nadal, Laia [1 ]
机构
[1] Univ Glasgow, Sch Chem, Glasgow G12 8QQ, Scotland
基金
英国工程与自然科学研究理事会;
关键词
RELATIVISTIC DFT CALCULATIONS; POST-FUNCTIONALIZATION; ACCURATE CALCULATION; MOLECULAR-DYNAMICS; RUTHENIUM; ELECTRON; RU-99; STEP;
D O I
10.1039/d3dt02694a
中图分类号
O61 [无机化学];
学科分类号
070301 ; 081704 ;
摘要
Density Functional Theory (DFT) calculations were employed to systematically study the accuracy of various exchange-correlation functionals in reproducing experimental P-31 NMR chemical shifts, delta(Exp)(P-31) for Keggin, [PW12O40](3-) and corresponding lacunary clusters: [PW11O39](7-), [A-PW9O34](9-), and [B-PW9O34](9-). Initially, computed chemical shifts, delta(Calc)(P-31) were obtained with without neutralising their charge in which associated error, delta(Error)(P-31), decreased as a function of Hartree-Fock (HF) exchange, attributed to constriction of the P-O tetrahedron. By comparison, delta(Calc)(P-31) performed with explicitly located counterions to render the system charge neutral, reduced discrepancies, delta(Error)(P-31) by 1-2 ppm. However, uncertainties in delta(Calc)(P-31) remain, particularly for [B-PW9O34](9-) anions attributed to direct electrostatic interactions between the counterions and the central tetrahedron. Optimal results were achieved using the PBE/TZP//PBE0/TZP method, achieving a mean absolute error (MAE) and a mean squared error (MSE) of 4.03 ppm. Our results emphasize that understanding the nature of the electrolyte and solvent environment is essential to obtaining reasonable agreement between theoretical and experimental results.
引用
收藏
页码:564 / 571
页数:8
相关论文
共 50 条
  • [1] Accurate calculation of 31P NMR chemical shifts in polyoxometalates
    Pascual-Borras, Magda
    Lopez, Xavier
    Poblet, Josep M.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2015, 17 (14) : 8723 - 8731
  • [2] Substituent effects on the 31P NMR chemical shifts of arylphosphorothionates
    Hernández, J
    Goycoolea, FM
    Zepeda-Rivera, D
    Juárez-Onofre, J
    Martínez, K
    Lizardi, J
    Salas-Reyes, M
    Gordillo, B
    Velázquez-Contreras, C
    García-Barradas, O
    Cruz-Sánchez, S
    Domínguez, Z
    TETRAHEDRON, 2006, 62 (11) : 2520 - 2528
  • [3] A QSPR study of the 31P NMR chemical shifts of phosphines
    Bosque, R
    Sales, J
    JOURNAL OF CHEMICAL INFORMATION AND COMPUTER SCIENCES, 2001, 41 (01): : 225 - 232
  • [4] Effect of intracellular chemical environment on 31P NMR chemical shifts.
    Turco, DA
    Iuliucci, RJ
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 227 : U603 - U603
  • [5] Quantum chemical calculations of 31P NMR chemical shifts: scopes and limitations
    Latypov, Shamil K.
    Polyancev, Fedor M.
    Yakhvarov, Dmitry G.
    Sinyashin, Oleg G.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2015, 17 (10) : 6976 - 6987
  • [6] 31P NMR chemical shifts in hypervalent oxyphosphoranes and polymeric orthophosphates
    Zhang, Y
    Oldfield, E
    JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (01): : 579 - 586
  • [7] THEORETICAL INTERPRETATION OF 31P NMR CHEMICAL SHIFTS .I.
    LETCHER, JH
    VANWAZER, JR
    JOURNAL OF CHEMICAL PHYSICS, 1966, 44 (02): : 815 - &
  • [8] DFT Calculations of 31P NMR Chemical Shifts in Palladium Complexes
    Kondrashova, Svetlana A.
    Polyancev, Fedor M.
    Latypov, Shamil K.
    MOLECULES, 2022, 27 (09):
  • [9] 31P NMR Chemical Shifts of Solvents and Products Impurities in Biomass Pretreatments
    Li, Mi
    Yoo, Chang Geun
    Pu, Yunqiao
    Ragauskas, Arthur J.
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (01): : 1265 - 1270
  • [10] Theoretical analysis of 31P NMR chemical shifts in vanadium phosphorus oxides
    Robert, V
    Petit, S
    Borshch, SA
    Bigot, B
    JOURNAL OF PHYSICAL CHEMISTRY A, 2000, 104 (19): : 4586 - 4591