首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Computation provides chemical insight into the diverse hydride NMR chemical shifts of [Ru(NHC)(4)-( L)H](0/+) species (NHC = N-heterocyclic carbene; L = vacant, H-2, N-2, CO, MeCN, O-2, P-4, SO2, H-, F- and Cl-) and their [Ru(R2PCH2CH2PR2)(2)(L)H](+) congeners
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Computation provides chemical insight into the diverse hydride NMR chemical shifts of [Ru(NHC)(4)-( L)H](0/+) species (NHC = N-heterocyclic carbene; L = vacant, H-2, N-2, CO, MeCN, O-2, P-4, SO2, H-, F- and Cl-) and their [Ru(R2PCH2CH2PR2)(2)(L)H](+) congeners

机译:计算为[Ru(NHC)(4)(4) - (L)H](0 / +)物种(NHC = N-杂环切菜; L =空位,H-2,N-)提供了化学洞察化学型偏见 2,CO,MECN,O-2,P-4,SO2,H-,F-和CL-)及其[Ru(R2PCH2CH2PR2)(2)(L)H](+)同一

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摘要

Relativistic density functional theory calculations, both with and without the effects of spin-orbit coupling, have been employed to model hydride NMR chemical shifts for a series of [Ru(NHC)(4)(L)H](0/+) species (NHC = N-heterocyclic carbene; L = vacant, H-2, N-2, CO, MeCN, O-2, P-4, SO2, H-, F- and Cl-), as well as selected phosphine analogues [Ru(R2PCH2CH2PR2)(2)(L) H](+) (R = Pr-i, Cy; L = vacant, O-2). Inclusion of spinorbit coupling provides good agreement with the experimental data. For the NHC systems large variations in hydride chemical shift are shown to arise from the paramagnetic term, with high net shielding (L = vacant, Cl-, F-) being reinforced by the contribution from spin-orbit coupling. Natural chemical shift analysis highlights the major orbital contributions to the paramagnetic term and rationalizes trends via changes in the energies of the occupied Ru d(pi) orbitals and the unoccupied sigma(star)(Ru-H) orbital. In [Ru(NHC)(4)(eta(2)-O-2) H](+) a delta-interaction with the O-2 ligand results in a low-lying LUMO of d(pi) character. As a result this orbital can no longer contribute to the paramagnetic shielding, but instead provides additional deshielding via overlap with the remaining (occupied) dp orbital under the L-z angular momentum operator. These two effects account for the unusual hydride chemical shift of +4.8 ppm observed experimentally for this species. Calculations reproduce hydride chemical shift data observed for [Ru((i)Pr(2)PCH(2)CH(2)PiPr(2))(2)(eta(2)-O-2) H]+ (delta = -6.2 ppm) and [Ru(R2PCH2CH2PR2)(2)H](+) (ca. -32 ppm, R = Pr-i, Cy). For the latter, the presence of a weak agostic interaction trans to the hydride ligand is significant, as in its absence (R = Me) calculations predict a chemical shift of -41 ppm, similar to the [Ru(NHC)(4)H](+) analogues. Depending on the strength of the agostic interaction a variation of up to 18 ppm in hydride chemical shift is possible and this factor (that is not necessarily readily detected experimentally) can aid in the interpretation of hydride chemical shift data for nominally unsaturated hydride-containing species. The synthesis and crystallographic characterization of the BArF(4)(-)salts of [Ru(IMe4)(4)(L) H](+) (IMe4 = 1,3,4,5-tetramethy-limidazol- 2-ylidene; L = P-4, SO2; Ar-F = 3,5-(CF3)(2)C6H3) and [Ru(IMe4)(4)(Cl) H] are also reported.
机译:对旋转轨道耦合的影响的相对论密度函数理论计算已经用于模拟氢化物NMR化学位移的一系列[Ru(NHC)(4)(L)H](0 / +)物种(NHC = N-杂环碳切菜; L =空位,H-2,N-2,CO,MECN,O-2,P-4,SO2,H-,F-和CL-)以及选定的磷化膦类似物[Ru(R2PCH2CH2PR2)(2)(L)H](+)(r = Pr-1,Cy; L =空位,O-2)。包含SpingOrbit耦合与实验数据提供良好的一致性。对于NHC系统,氢化物化学换档的大变化显示出由顺磁术语出现,通过旋转轨道耦合的贡献加强了高净屏蔽(L =空气,CL-,F +。自然化学换档分析突出了对顺磁性术语的主要轨道贡献,并通过占领的ru d(pi)轨道和未占用的σ(star)(ru-h)轨道的变化来合理化趋势。在[Ru(NHC)(4)(Eta(2)-O-2)H](+)与O-2配体的δ相互作用导致D(PI)特征的低位亮度。结果,该轨道不能再贡献顺磁屏蔽,而是通过L-Z角动量操作员下的剩余(占用的)DP轨道重叠提供额外的脱屏。这两种效果占本物种实验观察到+ 4.8ppm的不寻常的氢化物化学偏移。计算再现氢化物化学换档数据,观察到[Ru((i)pr(2)pCH(2)CH(2)pIPR(2))(2)(2)(Eta(2)-O-2)H] +(delta = -6.2 ppm)和[Ru(R2PCH2CH2PR2)(2)H](+)(约32ppm,r = Pr-1,Cy)。对于后者,存在弱恶性相互作用转移到氢化物配体的显着性,因为其不存在(R = ME)计算预测-41ppm的化学位移,类似于[Ru(NHC)(4)H. ](+)类似物。取决于术治疗相互作用的强度,氢化物化学换档中可达18ppm的变化是可能的,并且该因子(实际上不一定地检测到)可以有助于解释含名义上不饱和氢化物物种的氢化物化学换档数据。 [Ru(IME4)(4)(4)(4)H](+)(IME4 = 1,3,4,5-四甲基 - Limidazol-2- ylidene的合成和结晶表征( - )盐的合成和结晶表征; L = P-4,SO2; AR-F = 3,5-(CF 3)(2)C6H3)和[Ru(IME4)(4)(CL)H]。

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