Literature DB >> 30204184

Towards operando computational modeling in heterogeneous catalysis.

Lukáš Grajciar1, Christopher J Heard, Anton A Bondarenko, Mikhail V Polynski, Jittima Meeprasert, Evgeny A Pidko, Petr Nachtigall.   

Abstract

An increased synergy between experimental and theoretical investigations in heterogeneous catalysis has become apparent during the last decade. Experimental work has extended from ultra-high vacuum and low temperature towards operando conditions. These developments have motivated the computational community to move from standard descriptive computational models, based on inspection of the potential energy surface at 0 K and low reactant concentrations (0 K/UHV model), to more realistic conditions. The transition from 0 K/UHV to operando models has been backed by significant developments in computer hardware and software over the past few decades. New methodological developments, designed to overcome part of the gap between 0 K/UHV and operando conditions, include (i) global optimization techniques, (ii) ab initio constrained thermodynamics, (iii) biased molecular dynamics, (iv) microkinetic models of reaction networks and (v) machine learning approaches. The importance of the transition is highlighted by discussing how the molecular level picture of catalytic sites and the associated reaction mechanisms changes when the chemical environment, pressure and temperature effects are correctly accounted for in molecular simulations. It is the purpose of this review to discuss each method on an equal footing, and to draw connections between methods, particularly where they may be applied in combination.

Entities:  

Year:  2018        PMID: 30204184      PMCID: PMC6240816          DOI: 10.1039/c8cs00398j

Source DB:  PubMed          Journal:  Chem Soc Rev        ISSN: 0306-0012            Impact factor:   54.564


  202 in total

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Review 8.  First Principles Neural Network Potentials for Reactive Simulations of Large Molecular and Condensed Systems.

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Review 9.  Microkinetic Analysis and Scaling Relations for Catalyst Design.

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  13 in total

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5.  Photochemistry with Cyanines in the Near Infrared: A Step to Chemistry 4.0 Technologies.

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6.  Dynamic Interplay between Defective UiO-66 and Protic Solvents in Activated Processes.

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Review 7.  Photophysics and photochemistry of NIR absorbers derived from cyanines: key to new technologies based on chemistry 4.0.

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9.  Combining Machine Learning and Computational Chemistry for Predictive Insights Into Chemical Systems.

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10.  Operando Modeling of Multicomponent Reactive Solutions in Homogeneous Catalysis: from Non-standard Free Energies to Reaction Network Control.

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Journal:  ChemCatChem       Date:  2019-12-11       Impact factor: 5.686

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