3D-GATED · Three-Dimensional Graphene Architectures as Templates for Electrochemical Devices
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2015-05-15 → 2017-05-14
- Финансиране от ЕС
- 195 455 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Графенови структури, създадени чрез 3D принтиране, се изследват за използване в батерии и суперкондензатори. Те помагат за създаването на по-леки и компактни енергийни устройства за смартфони и смартчасове.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Three-Dimensional Graphene Architectures as Templates for Electrochemical Devices
Electrochemical energy devices, such as super-capacitors, batteries, fuel cells, and water-splitting catalysts, are already a multi-billion dollar industry globally. These devices permeate our everyday life from powering our consumer electronics, providing power storage for renewable energy generation systems, and generating pure H2 or O2. The materials that power these devices rely on having a high conductivity, surface area, and a defined pore structure, along with the commercial focus of having a small footprint and being lightweight. 3-Dimensional Graphene Architectures as Templates for Electrochemical Devices (3D-GATED), targeted providing new materials platforms for the continuing miniaturization of these electrochemical energy devices. The increasing power demands along with the focus on weight reduction of consumer electronics such as smartphones, portable gaming consoles, and smartwatches, leads to a constant need for better utilization of the volume and weight available for the electronics powering these devices. Additive manufacturing, or 3D printing, has been developing in capabilities exceptionally rapidly over the past decade, and now provides a tool for the production of scaffolds on the macro- to nano- scale with customisable densities and structures. 3D-GATED aimed to take one of the most promising energy storage materials in graphene and grow this extremely light weight material on designer, 3D printed architectures. These 3D, freestanding, graphene architectures then allow for the incorporation of materials to add device specificity (super-capacitor, battery, or water splitting catalyst). Layered transition metal dichalcogenides (LTMDs) are an ideal material for coupling to these graphene architectures as they strongly interact and bind with graphene along the basal plane, have a high surface area, can be highly conductive or catalytically active (depending on their crystal structure), and are both environmentally abundant and friendly. Through the combination of additive manufacturing, graphene synthesis, LTMD synthesis, and electrochemical device fabrication, 3D-GATED aimed to provide a new materials platform for the formation of high power and energy electrochemical devices that can be tailored, either through structural design or LTMD additive type for specific application requirements. Throughout 3D-GATED there was significant transfer of knowledge, with training gained in LTMD synthesis and characterisation, and photo- and electro-catalytic electrochemistry, and training given in graphene synthesis, super-capacitance device building and characterisation, and carbon composite formation. The Mattevi Research Group and Imperial College London was an ideal place to conduct 3D-GATED as it provided excellent support for this multidisciplinary project, whilst also providing excellent personal and career development opportunities. The Postdoctoral development Centre at Imperial College London further facilitated these development opportunities with an array of courses to develop research and management skills. At the conclusion of 3D-GATED, 3D tailorable graphene architectures, 3D LTMD architecutres, and 3D graphene/LTMD architectures have been grown directly on additive manufactured scaffolds. The produced materials have shown great promise as super-capacitor devices and as water-splitting catalyst electrodes. Full device testing and optimisation is currently ongoing to test these materials in real world scenarios.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
3D-GATED will focus on the utilisation of graphene in a unique and precise way, in combination with functional materials such as MoS2 and MoSe2 to address the specific demands of the sustainable energy sector, focussing on electrode development for the hydrogen evolution reaction (HER). Specifically, 3D-GATED will synthesise, optimise, and translate to a functional device; custom designed free-standing 3D graphene architectures through chemical vapour deposition (CVD) on complex Cu constructs. 3D-GATED addresses the need for reproducibility, low gravimetric density, and long range conduction in electrochemical device electrodes. This will be achieved through a convergence of research progress; improvements in selective laser melting (SLM) of Cu; CVD of graphene on Cu; delamination of graphene from Cu; and doping of graphene with functional materials. Growth of 3D graphene on Cu constructs will be analysed for quality and homogeneity using Raman spectroscopy (and mapping), x-ray spectroscopies, and electron microscopy. Exfoliation of graphene from the Cu constructs will be studied though chemical etching and electrochemical delamination. The free-standing 3D graphene architectures will be doped with functional materials before being analysed for suitability as electrochemical devices. Additional focus will be given to utilizing the synergistic effects of the 2D catalytically active materials, MoS2 and MoSe2, with graphene to form fully functional device architectures for the HER. 3D-GATED will make major advances in the use of graphene template materials for electrochemical devices, propelling the integration of these devices into the commercial sphere through Imperials diverse commercial partners.
Оригинален текст от CORDIS (на английски).
Участници
- IMPERIAL COLLEGE OF SCIENCE TECHNOLOGY AND MEDICINE · LondonКоординаторОбединеното кралство
Връзки
- Виж в CORDIS
- DOI: 10.3030/660721
- https://web.archive.org/web/20170130001924/http://www.imperial.ac.uk/people/p.sherrell
Данни: CORDIS, © Европейски съюз
