Sutton Jonathan E, Danielson Thomas, Beste Ariana, Savara Aditya
Chemical Sciences Division, Oak Ridge National Laboratory , Oak Ridge, Tennessee 37831, United States.
Department of Materials Science and Engineering, Virginia Polytechnic Institute and State University , Blacksburg, Virginia 24060, United States.
J Phys Chem Lett. 2017 Dec 7;8(23):5810-5814. doi: 10.1021/acs.jpclett.7b02683. Epub 2017 Nov 15.
Upgrading of primary alcohols by C-H bond breaking currently requires temperatures of >200 °C. In this work, new understanding from simulation of a temperature-programmed reaction study with methanol over a CeO(111) surface shows C-H bond breaking and the subsequent desorption of formaldehyde, even below room temperature. This is of particular interest because CeO is a naturally abundant and inexpensive metal oxide. We combine density functional theory and kinetic Monte Carlo methods to show that the low-temperature C-H bond breaking occurs via disproportionation of adjacent methoxy species. We further show from calculations that the same transition state with comparable activation energy exists for other primary alcohols; with ethanol, 1-propanol, and 1-butanol explicitly calculated. These findings indicate a promising class of transition states to search for in seeking low-temperature C-H bond breaking over inexpensive oxides.
目前,通过碳氢键断裂来升级伯醇需要高于200°C的温度。在这项工作中,对甲醇在CeO(111)表面进行程序升温反应研究的模拟有了新的认识,结果表明即使在室温以下也会发生碳氢键断裂以及随后甲醛的解吸。这一点特别值得关注,因为CeO是一种天然丰富且廉价的金属氧化物。我们结合密度泛函理论和动力学蒙特卡罗方法表明,低温碳氢键断裂是通过相邻甲氧基物种的歧化反应发生的。我们还通过计算表明,其他伯醇也存在具有可比活化能的相同过渡态;其中对乙醇、1-丙醇和1-丁醇进行了明确计算。这些发现表明,在寻找通过廉价氧化物实现低温碳氢键断裂的过程中,有一类很有前景的过渡态值得探索。