首页> 外文期刊>Journal of the American Chemical Society >Relaxation Dispersion NMR to Reveal Fast Dynamics in Brønsted Acid Catalysis: Influence of Sterics and H-Bond Strength on Conformations and Substrate Hopping
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Relaxation Dispersion NMR to Reveal Fast Dynamics in Brønsted Acid Catalysis: Influence of Sterics and H-Bond Strength on Conformations and Substrate Hopping

机译:弛豫弥散NMR揭示布朗斯台德酸催化中的快速动力学:胶和H键强度对构象和底物跳跃的影响

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NMR provides both structural and dynamic information, which is key to connecting intermediates and to understanding reaction pathways. However, fast exchanging catalytic intermediates are often inaccessible by conventional NMR due its limited time resolution. Here, we show the combined application of the H-1 off-resonance R-1 rho NMR method and low temperature (185-175 K) to resolve intermediates exchanging on a mu s time scale (ns at room temperature). The potential of the approach is demonstrated on chiral phosphoric acid (CPA) catalysts in their complexes with imines. The otherwise inaccessible exchange kinetics of the E-I reversible arrow E-II imine conformations and thermodynamic E-I reversible arrow E - II imine ratios inside the catalyst pocket are experimentally determined and corroborated by calculations. The E-I E-II exchange rate constants (k(ex)(185 K) ) for different catalyst-substrate binary complexes varied between 2500 and 19 000 s(-1) (tau(ex) = 500-50 mu s). Theoretical analysis of these exchange rate constants revealed the involvement of an intermediary tilted conformation E-III, which structurally resembles the hydride transfer transition state. The main E-I and E-II exchange pathway is a hydrogen bond strength dependent tilting-switching-tilting mechanism via a bifurcated hydrogen bond as a transition state. The reduction in the sterics of the catalyst showed an accelerated switching process by at least an order of magnitude and enabled an additional rotational pathway. Hence, the exchange process is mainly a function of the intrinsic properties of the 3,3'-substituents of the catalyst. Overall, we believe that the present study opens a new dimension in catalysis via experimental access to structures, populations, and kinetics of catalyst-substrate complexes on the mu s time scale by the H-1 off-resonance R-1 rho method.
机译:NMR提供结构和动态信息,这是连接中间体和理解反应途径的关键。但是,常规的NMR由于时间分辨率有限,通常无法快速交换催化中间体。在这里,我们显示了H-1非共振R-1 rho NMR方法和低温(185-175 K)的组合应用,可解决以毫秒为单位(室温下为ns)交换的中间体。在手性磷酸(CPA)催化剂与亚胺的络合物中证明了该方法的潜力。通过实验确定并通过计算证实了E-1可逆箭头E-II亚胺构象和热力学E-I可逆箭头E-II亚胺比的否则无法达到的交换动力学。不同催化剂-底物二元络合物的E-I E-II交换速率常数(k(ex)(185 K))在2500和19 000 s(-1)之间变化(tau(ex)= 500-50μs)。对这些汇率常数的理论分析表明,存在中间倾斜构象E-III,该结构在结构上类似于氢化物转移过渡态。 E-I和E-II的主要交换途径是通过分叉的氢键作为过渡态的氢键强度依赖性倾斜-切换-倾斜机制。催化剂的立体空间的减少显示出至少一个数量级的加速转换过程,并实现了附加的旋转路径。因此,交换过程主要是催化剂的3,3′-取代基的固有性质的函数。总的来说,我们相信本研究通过H-1非共振R-1 rho方法在实验时间内获得了结构,数量和催化剂-底物络合物动力学的实验,从而为催化开辟了一个新的领域。

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