Skip to main content
European Commission logo
italiano italiano
CORDIS - Risultati della ricerca dell’UE
CORDIS

Design and NanoEngineering of Microporous Membranes for Energy Storage

Descrizione del progetto

Migliore stoccaggio dell’energia per tecnologie a basse emissioni di carbonio

Il rapido aumento della domanda, della produzione e dell’uso di energia rinnovabile ecocompatibile, come l’energia eolica e solare, ha aumentato la necessità di migliori tecnologie di stoccaggio dell’energia che possano essere integrate nella rete elettrica. Nonostante l’elevata richiesta di tali tecnologie, le tecnologie esistenti sono spesso costose. Questo costo è solitamente legato al prezzo elevato delle membrane commerciali in Nafion. Il progetto NanoMMES, finanziato dall’UE, svilupperà e ingegnerizzerà in scala nanometrica un’alternativa ad alte prestazioni e a basso costo. Per raggiungere questo obiettivo, il progetto metterà a punto polimeri microporosi, elaborandoli e quindi combinandoli con prodotti chimici per batterie a flusso redox, allo scopo di produrre una soluzione di stoccaggio dell’energia efficiente e stabile.

Obiettivo

With the rapid development of renewable energy such as solar and wind power, energy storage technologies are in urgent need to integrate the low carbon energy into the power grid. Redox flow batteries are promising for grid scale energy storage owing to their scalable storage capacity, decoupled power and energy, long-term cycle performance, and quick response time. Membrane separators play a crucial role in flow batteries by selectively transporting ions while preventing the crossover of redox-active materials. Commercial Nafion membranes are being widely used for flow batteries, however, their high costs limit the large-scale application of this promising technology. Next-generation low-cost membranes with high ionic conductivity and selectivity, and durability are desirable for flow battery energy storage. This proposal NanoMMES aims at designing and nanoengineering low-cost, high-performance, ion-selective microporous membranes for redox flow battery energy storage applications. The objectives of NanoMMES will be achieved through curiosity-driven research into (1) designing the structures of microporous polymers to precisely tune the pore size and ion-conducting functionality required for batteries with different redox chemistries; (2) processing and nanoengineering polymers into highly conductive and selective membranes, and understanding the mechanisms of transport of ions and redox materials; (3) combining the designer membranes with redox flow battery chemistries to achieve efficient and stable energy storage. NanoMMES will undertake interdisciplinary research combining the molecular design of microporous polymers, membrane science and engineering, and redox flow battery chemistry and technology. The ultimate goal of the project is to generate design principles for next-generation ion-selective membranes that will have broad implications on advanced batteries for energy storage, helping the EU develop renewable energy and reduce greenhouse gas emissions.

Parole chiave

Meccanismo di finanziamento

ERC-STG - Starting Grant

Istituzione ospitante

IMPERIAL COLLEGE OF SCIENCE TECHNOLOGY AND MEDICINE
Contribution nette de l'UE
€ 1 499 871,00
Indirizzo
SOUTH KENSINGTON CAMPUS EXHIBITION ROAD
SW7 2AZ LONDON
Regno Unito

Mostra sulla mappa

Regione
London Inner London — West Westminster
Tipo di attività
Higher or Secondary Education Establishments
Collegamenti
Costo totale
€ 1 499 871,00

Beneficiari (1)