Willoughby Patrick H, Niu Dawen, Wang Tao, Haj Moriana K, Cramer Christopher J, Hoye Thomas R
Department of Chemistry, Supercomputing Institute, and Chemical Theory Center, University of Minnesota , 207 Pleasant Street SE, Minneapolis, Minnesota 55455, United States.
J Am Chem Soc. 2014 Oct 1;136(39):13657-65. doi: 10.1021/ja502595m. Epub 2014 Sep 17.
We have studied reactions of secondary and primary alcohols with benzynes generated by the hexadehydro-Diels-Alder (HDDA) reaction. These alcohols undergo competitive addition vs dihydrogen transfer to produce aryl ethers vs reduced benzenoid products, respectively. During the latter process, an equivalent amount of oxidized ketone (or aldehyde) is formed. Using deuterium labeling studies, we determined that (i) it is the carbinol C-H and adjacent O-H hydrogen atoms that are transferred during this process and (ii) the mechanism is consistent with a hydride-like transfer of the C-H. Substrates bearing an internal trap attached to the reactive, HDDA-derived benzyne intermediate were used to probe the kinetic order of the alcohol trapping agent in the H2-transfer as well as in the alcohol addition process. The H2-transfer reaction is first order in alcohol. Our results are suggestive of a concerted H2-transfer process, which is further supported by density functional theory (DFT) computational studies and results of a kinetic isotope effect experiment. In contrast, alcohol addition to the benzyne is second order in alcohol, a previously unrecognized phenomenon. Additional DFT studies were used to further probe the mechanistic aspects of the alcohol addition process.
我们研究了仲醇和伯醇与通过六脱氢狄尔斯-阿尔德(HDDA)反应生成的苯炔的反应。这些醇分别经历加成与氢转移的竞争,以分别生成芳基醚与还原的苯类产物。在后一过程中,会形成等量的氧化酮(或醛)。通过氘标记研究,我们确定:(i)在此过程中转移的是甲醇的C-H和相邻的O-H氢原子,以及(ii)该机理与C-H的类似氢化物转移一致。使用连接到反应性HDDA衍生的苯炔中间体上带有内部捕获剂的底物来探究醇捕获剂在氢转移以及醇加成过程中的动力学级数。氢转移反应对醇为一级反应。我们的结果表明这是一个协同的氢转移过程,密度泛函理论(DFT)计算研究和动力学同位素效应实验结果进一步支持了这一点。相比之下,醇与苯炔的加成对醇为二级反应,这是一个以前未被认识到的现象。额外的DFT研究用于进一步探究醇加成过程的机理方面。