H2020Individual fellowship2019–2021

MATISSE · Multifunctional Hierarchically-Structured Systems for Energy Storage Devices

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2019-08-05 → 2021-08-04
EU contribution
€212,934
Participants
1
Scheme
MSCA-IF-EF-ST

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Results in brief

Multifunctional Hierarchically-Structured Systems for Energy Storage Devices

The widespread use of portable devices, as well as the electrification of transport, require a new generation of energy storage devices that deliver higher specific performance than Li-ion batteries. Lightweight designs and energy efficiency have been widely considered as critical factors in the design of electric vehicles, which has led to the development of structural energy storage devices (SESDs). SESDs are multifunctional materials or structures, capable of acting as an electrochemical energy storage system (e.g. batteries and supercapacitors) while possessing mechanical integrity. The objective of MATISSE was to merge materials typical of supercapacitors with materials characteristic of batteries in composites to improve the overall device performance in terms of voltage window, capacity and longevity in comparison with other systems. Moreover, by tailoring the structure of these composites to carry mechanical loads as well as store electrochemical energy, it was possible to fabricate light SESDs with high energy and power densities.

Data: CORDIS, © European Union

Project objective

The widespread use of portable devices, as well as the electrification of transport, require a new generation of energy storage devices that deliver higher specific performance than Li-ion batteries. By designing multifunctional materials that combine structural and electrochemical energy storage, an improvement in gravimetric and volumetric efficiency can be achieved. The research aim of this project is to develop Energy Storage Devices based on multifunctional hierarchically-structured systems. The success of the project will be driven by the combination of two strong and complementary areas of expertise: At Imperial and IMDEA, the fellow will work for 24 months in groups with an extensive experience of carbon and inorganic nanomaterials synthesis, modification, characterisation, and application, particularly on hierarchical systems. On the other hand, she will bring her own experience in developing and characterising electrodes and electrolytes for a wide range of batteries as well as supercapacitors. The interdisciplinary intersection of new materials chemistry, with electrochemical device engineering, and structural composite mechanisms, will provide a unique opportunity for rapid progress in both science and technology. The structural energy storage devices will be developed from technology readiness level 1 and to 4, in order to accelerate direct impact on industrial applications, for example in the automotive and electronics sectors. During the two-year project, the fellow and supervisor will disseminate their results to Industry, Academia and General Public through patents and articles in podcasts, newspapers and scientific journals. From the start, an individual career development plan for the fellow will be developed with the supervisor and will be reviewed regularly during the fellowship. Prof. Shaffer’s talents for both research and teaching will inspire the fellow to launch ambitious research and educational projects early in her academic career.

Original text from CORDIS.

Participants

  • IMPERIAL COLLEGE OF SCIENCE TECHNOLOGY AND MEDICINE · LondonCoordinatorUnited Kingdom

Links

Data: CORDIS, © European Union