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Tuning the selectivity for ring-opening reactions of methylcyclopentane over Pt catalysts: A mechanistic study from first-principles calculations
Authors:Zhi-Jian Zhao  Lyudmila V Moskaleva  Notker Rösch
Affiliation:1. Catalysis Division, CSIR – National Chemical Laboratory, Pune 411008, India;2. University Institute of Chemical Technology, North Maharashtra University, Jalgaon 425001, India;1. State Key Laboratory of Multi-Phase Complex Systems, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China;2. University of Chinese Academy of Sciences, Beijing 100049, China;1. Tianjin University of Science & Technology, Tianjin 300457, China;2. Institute of Mechanics, Chinese Academy of Science, Beijing 100190, China;1. Department of Physics and Engineering Physics, The University of Tulsa, Tulsa, OK 74104, USA;2. School of Chemical, Biological and Materials Engineering, University of Oklahoma, Norman, OK 73019, USA
Abstract:Using density functional calculations, we studied the conversion of methylcyclopentane to its ring-opening products: branched hexanes 2-methylpentane (2MP), 3-methylpentane (3MP)], as well as unbranched n-hexane (nHx). We employed flat Pt(1 1 1) and stepped Pt(2 1 1) to describe terrace-rich large and defect-rich small Pt particles, respectively. On Pt(1 1 1), the barriers of all elementary steps for the paths leading to branched hexanes lie below 90 kJ mol?1, while the formation of nHx features a barrier of 116 kJ mol?1 in its C–C bond scission step. This higher barrier impedes the formation of nHx on Pt(1 1 1) and thus rationalizes the experimental observations that terrace-rich large Pt particles selectively produce branched hexanes. However, on Pt(2 1 1), the barrier of C–C scission for the formation of nHx decreases to 94 kJ mol?1, thus implying enhanced formation of nHx over the defects, in agreement with the essentially statistical product distribution observed with defect-rich small Pt particles.
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