Jonathan E. Sutton
University of Delaware
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Jonathan E. Sutton.
Nature Chemistry | 2016
Jonathan E. Sutton; Wei Guo; Markos A. Katsoulakis; Dionisios G. Vlachos
Kinetic models based on first principles are becoming common place in heterogeneous catalysis because of their ability to interpret experimental data, identify the rate-controlling step, guide experiments and predict novel materials. To overcome the tremendous computational cost of estimating parameters of complex networks on metal catalysts, approximate quantum mechanical calculations are employed that render models potentially inaccurate. Here, by introducing correlative global sensitivity analysis and uncertainty quantification, we show that neglecting correlations in the energies of species and reactions can lead to an incorrect identification of influential parameters and key reaction intermediates and reactions. We rationalize why models often underpredict reaction rates and show that, despite the uncertainty being large, the method can, in conjunction with experimental data, identify influential missing reaction pathways and provide insights into the catalyst active site and the kinetic reliability of a model. The method is demonstrated in ethanol steam reforming for hydrogen production for fuel cells.
Journal of Physical Chemistry Letters | 2017
Jonathan E. Sutton; Thomas Danielson; Ariana Beste; Aditya Ashi Savara
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 CeO2(111) surface shows C-H bond breaking and the subsequent desorption of formaldehyde, even below room temperature. This is of particular interest because CeO2 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.
Journal of Physical Chemistry C | 2013
Jonathan E. Sutton; Paraskevi Panagiotopoulou; Xenophon E. Verykios; Dionisios G. Vlachos
ACS Catalysis | 2012
Jonathan E. Sutton; Dionisios G. Vlachos
ACS Catalysis | 2014
Shengguang Wang; Vassili Vorotnikov; Jonathan E. Sutton; Dionisios G. Vlachos
Industrial & Engineering Chemistry Research | 2015
Jonathan E. Sutton; Dionisios G. Vlachos
Chemical Engineering Science | 2015
Jonathan E. Sutton; Dionisios G. Vlachos
Journal of Catalysis | 2013
Jonathan E. Sutton; Dionisios G. Vlachos
Journal of Catalysis | 2016
Jonathan E. Sutton; Dionisios G. Vlachos
Industrial & Engineering Chemistry Research | 2014
Nageswara Rao Peela; Jonathan E. Sutton; Ivan C. Lee; Dionisios G. Vlachos