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Funded Projects › H2020

QML · Quantum Machine Learning: Chemical Reactions with Unprecedented Speed and Accuracy

H2020Status: CLOSED1 June 201831 May 2024EU funding €1,980,500Call ERC-2017-COG

Large and diverse property data sets of relaxed molecules and crystals, resulting from computationally demanding quantum calculations, have recently been used to train machine learning models of various energetic and electronic properties. We propose to advance these techniques to a level where they can also describe reaction profiles, i.e. reactive non-equilibrium processes which traditionally would require quantum chemistry treatment. The resulting quantum machine learning (QML) models will provide reaction profiles for new reactants in real-time and with quantum accuracy. The overall goal is to develop a predictive computational tool which allows chemists to easily optimize reaction conditions, develop new catalysts, or even plan new synthetic pathways.

Consortium · 3 organisations

coordinator

TECHNISCHE UNIVERSITAT BERLIN

DE · €665,609

participant

UNIVERSITAT BASEL

CH · €950,101

participant

UNIVERSITAT WIEN

AT · €364,790

Research fields

View the official record on CORDIS →

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Source: CORDIS, Publications Office of the European Union. Global Research Partnerships surfaces open EU research data to help you find collaborators; we are not affiliated with the European Union.