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Nucleophilicity and Electrophilicity Parameters for Predicting Absolute Rate Constants of Highly Asynchronous 1,3-Dipolar Cycloadditions of Aryldiazomethanes

机译:亲核性和亲电性参数,用于预测高度异步的芳基重氮甲烷的1,3-偶极环加成的绝对速率常数

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Kinetics of the reactions of aryldiazomethanes (ArCHN2) with benzhydrylium ions (Ar2CH+) have been measured photometrically in dichloromethane. The resulting second-order rate constants correlate linearly with the electrophilicities E of the benzhydrylium ions which allowed us to use the correlation lg k = s(N)(N + E) (eq 1) for determining the nucleophile-specific parameters N and sN of the diazo compounds. UV-vis spectroscopy was analogously employed to measure the rates of the 1,3-dipolar cycloadditions of these aryldiazomethanes with acceptor-substituted ethylenes of known electrophilicities E. The measured rate constants for the reactions of the diazoalkanes with highly electrophilic Michael acceptors (E -11, for example 2-benzylidene Meldrum's acid or 1,1-bis(phenylsulfonyl)ethylene) agreed with those calculated by eq 1 from the one-bond nucleophilicities N and s(N) of the diazo compounds and the one-bond electrophilicities of the dipolarophiles, indicating that the incremental approach of eq 1 may also be applied to predict the rates of highly asynchronous cycloadditions. Weaker electrophiles, e.g., methyl acrylate, react faster than calculated from E, N, and s(N), and the ratio of experimental to calculated rate constants was suggested to be a measure for the energy of concert Delta G double dagger(concert) = RT ln(k(2)(exptl)/k(2)(calcd)). Quantum chemical calculations indicated that all products isolated from the reactions of the aryldiazomethanes with acceptor substituted ethylenes (Delta(2)-pyrazolines, cyclopropanes, and substituted ethylenes) arise from intermediate Delta(1)-pyrazolines, which are formed through concerted 1,3-dipolar cycloadditions with transition states, in which the C-N bond formation lags behind the C-C bond formation. The Gibbs activation energies for these cycloadditions calculated at the PCM(UAO,CH2Cl2)/(U)B3LYP-D3/6-31+G(d,p) level of theory agree within 5 kJ mol(-1) with the experimental numbers showing the suitability of the applied polarizable continuum model (PCM) for considering solvation.
机译:芳族重氮甲烷(ArCHN2)与二苯甲基铵离子(Ar2CH +)的反应动力学已在二氯甲烷中进行了光度法测量。生成的二阶速率常数与二苯甲基离子的亲电性E线性相关,这使我们能够使用相关性lg k = s(N)(N + E)(eq 1)来确定亲核试剂特异性参数N和sN重氮化合物。紫外可见光谱类似地用于测量这些芳基重氮甲烷与已知亲电性E的受体取代的乙烯的1,3-偶极环加成的速率。重氮烷与高度亲电的Michael受体反应的测得速率常数(E> -11,例如2-亚苄基Meldrum's酸或1,1-双(苯磺酰基)乙烯与根据等式1由重氮化合物的单键亲核性N和s(N)以及单键亲电性计算出的酸一致亲核性的增加,表明等式1的增量方法也可用于预测高度异步环加成的速率。较弱的亲电子试剂(例如丙烯酸甲酯)的反应速度要比根据E,N和s(N)计算的速度更快,并且建议将实验常数与计算的速率常数之比作为标准Delta G双匕首能量的量度(音乐会) = RT ln(k(2)(exptl)/ k(2)(计算))。量子化学计算表明,从芳基重氮甲烷与受体取代的乙烯(Delta(2)-吡唑啉,环丙烷和取代的乙烯)的反应中分离出的所有产物均来自中间体Delta(1)-吡唑啉,它们是通过协同的1,3形成的-具有过渡态的-偶极环加成,其中CN键的形成滞后于CC键的形成。在PCM(UAO,CH2Cl2)/(U)B3LYP-D3 / 6-31 + G(d,p)的理论水平下计算出的这些环加成的吉布斯活化能与实验值一致在5 kJ mol(-1)内显示了应用的可极化连续体模型(PCM)考虑溶剂化的适用性。

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