Founding offer · lifetime membership for a single £24, exclusive to our first members · closes 20 June Claim your place →
Global Research Partnerships £24 Lifetime Log inCreate free account

Funded Projects › HORIZON

PREDICT · Photoelectrochemical CO2 Reduction Enhanced by Device Integration and Computational Techniques

HORIZONStatus: SIGNED1 November 202531 October 2029EU funding €3,994,676Call HORIZON-EIC-2024-PATHFINDERCHALLENGES-01

Motivated by the adverse environmental and societal effects of fossil resources (global warming, pollution, loss of habitat due to mining, health issues), efforts to defossilize the energy, mobility and chemical industries have sought alternatives based on, among others, solar power. Solar-to-X technologies have therefore emerged as promising, since they integrate the energy and chemical conversion steps within a single device, thereby being in principle able to reach high efficiencies, while also having the potential to be deployed in a decentralized manner. Yet, developing such technologies and designing pertinent devices is challenging due to the complex, multiscale nature of the phenomena underpinning their function. Thus motivated, PREDICT aims to elucidate fundamental mechanisms underlying the performance of photo(electro)chemical (PEC) CO2 reduction devices using advanced computational materials science and multiscale modeling techniques. By advancing quantum chemistry approaches for calculating excited state structures and dynamics, as well as bridging electronic, atomistic, mesoscopic, and macroscopic scales, this project will deliver a transferable theoretical and computational framework for the simulation of PEC devices, such as artificial leaves and beyond. The PREDICT modeling framework will be demonstrated via theoretical explorations of novel materials and processes for PEC CO2 reduction, enabling the fundamental understanding of phenomena crucial to the performance of PEC devices, and providing guidelines for optimizing the design to achieve superior performance. The framework and models will be further validated through collaborations with successful experimental projects from Area 1 of the call. Expected outcomes encompass improved device architectures, optimized materials properties, as well as a holistic and transferable multiscale modeling framework, driving the next generation of high-efficiency, integrated solar-to-X devices.

Consortium · 7 organisations

coordinator

THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD

UK · €699,910

participant

TOYOTA MOTOR EUROPE NV

BE · €557,261

participant

ETHNICON METSOVION POLYTECHNION

EL · €551,730

participant

POLITECNICO DI TORINO

IT · €504,375

participant

POLITECNICO DI MILANO

IT · €568,469

participant

UNIVERSITY COLLEGE LONDON

UK · €573,556

participant

HASKOLI ISLANDS

IS · €539,375

Research fields

View the official record on CORDIS →

← Find collaborators and more funded projects

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.