CoCoMag is part of the EIC Clean & Efficient Cooling Portfolio, which brings together innovative projects exploring next-generation cooling technologies to support the transition toward a low-impact, high-performance cold economy.
The portfolio serves as a collaborative space to create synergies, share knowledge, and maximise the overall impact.

BEYOND – method for smart and affordaBle Evaluation of simultaneous faults in heating and cooling sYstems based ON compresseD vapor technology – is a pioneering project. It introduces a cutting-edge, knowledge-driven method for detecting, diagnosing, and evaluating soft faults in heating and cooling systems powered by vapor compression technology. Our solution targets two critical challenges—refrigerant leakage and heat exchanger fouling—delivering effective management for more efficient and sustainable systems.

The CharCool project combines the use of natural energy and nature-based solutions to achieve clean and efficient cooling. CharCool is an innovative and sustainable heat-driven cooling system, where the excess of clean renewable energy or waste heat is stored in a modular thermochemical energy storage system that allows for seasonal storage. CharCool challenges the current vision of cooling industry by proposing a system that is highly flexible and reliable, thanks to its coupling with a high-energy density (200 kWh/m3) and inexpensive mid-/long-term thermochemical material.

Electrocaloric polymers have a cooling potential one order of magnitude larger than ceramics. This is what we intend to develop in this project, with a clear assessment of scale up capabilities. Arkema, world leader in electroactive polymers, will investigate electrocaloric polymers. KEMET, European industrial partner, will prepare thousands of multilayer capacitors based on optimized electrocaloric polymers. The PI from USTUTT, will build electronic modules able to increase the efficiency of electrocaloric devices up to 60%. LIST will assemble the multilayers and the electronic modules in a proof-of-concept aiming at reaching a cooling power of 1 kW and an efficiency of 60%.

DYMAN targets the development of a completely new design of adsorption chillers that are dynamically managed in data centres and moves forward with a dynamic management of self-cooled HPC data centres. Additionally, the project aims to develop at second core concept to further develop an existing two-phase cooling system, for high-performance computing servers to handle thermal loads more efficiently from next-generation processors. DYMAN proposes revolutionary technological advances focused on the use and management of clean and efficient cooling in data centers. The previously unproven technology that will be developed in DYMAN will enable the advancement and positioning of European cooling.

Refrigeration systems are responsible for tremendous global and EU emissions, making energy-efficient refrigeration an important energy and sustainability goal. Mechanocaloric materials are a promising solution for solid-state cooling. These materials demonstrate a reversible thermal change when subjected to an external mechanical field such as pressure or stress. The EIC-funded FROSTBIT project aims to develop the first functional refrigerator based on revolutionary solid-state technology using barocaloric materials in a regenerative cooling device. The materials will be synthesised for their ability to generate recently described significant barocaloric effects around the so-called spin crossover temperatures of some molecular complexes.

HYDROCOOL project will develop a novel cooling production concept that will significantly go beyond the state-of-the-art performance. The solution is based on the hydraulic compression and expansion of CO₂ in a reversible cycle capable of delivering cooling for a wide range of application such as food, data centres or air conditioning [-40ºC;+12ºC]. By switching from solid to fluid dynamics, HYDROCOOL will enable both isothermal compressions using liquid piston fluid and energy recovery between expander and compressor.

The focus of the LEMON project is to develop a scalable, helium-3-free cryogenic cooling solution capable of reaching milli-Kelvin temperatures. By pushing the limits of continuous Adiabatic Demagnetization Refrigeration (cADR), it will address the growing cooling demands in quantum technologies, particularly in quantum computing. We will design and investigate a modular system that has the potential for large-scale refrigeration with high cooling capacities. With our innovative approach, we want to eliminate the dependence on scarce helium-3 in cryogenic cooling.

The MAGCCINE project aims to transform the vaccine cold chain by developing a clean, efficient, solid-state magnetic refrigeration system based on the innovative rotating magnetocaloric effect (RMCE). The technology proposed reduces the need for permanent magnets, significantly lowering production costs, volume, and weight while enhancing efficiency. By eliminating harmful refrigerant gases, RMCE presents a sustainable solution to the pressing challenges of vaccine transportation. The final goal of this project is to design and optimize a fully operational vaccine refrigeration prototype that maintains the critical 2-8 ºC temperature range required by most vaccines.

The Project SMACool will develop a functional air-conditiong device for residential buildings, based on the emerging technology of elastocalorics, which uses shape memory alloys as solid-state refrigerants for efficient and sustainable cold (and heat) generation. Elastocalorics is an innovative, disruptive heating and cooling technology with the potential of reaching outstanding energy efficiency and zero global warming potential, using metals as solid-state refrigerant material instead of the harmful fluids used in cooling systems today.

ColteraTREC is a ground-breaking, patented technology which promises to revolutionize cooling through best-in-class TREC electrolytes and multiple other innovations, enabling extremely efficient thermodynamics and high-power densities. ColteraTREC heat pumps radically change the way cooling is accomplished by eliminating noxious refrigerants and achieving energy efficiencies close to the theoretical maximum.