H2020Обмен на изследователи2015–2019

DAFNEOX · Designing Advanced Functionalities through controlled NanoElement integration in OXide thin films

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2015-07-01 → 2019-06-30
Финансиране от ЕС
769 500 €
Участници
8
Схема
MSCA-RISE

Линиите свързват координатора с партньорите.

Накратко на български

Наночастици и нановериги се интегрират в структури от тънки оксидни филми, за да се създадат подредени масиви от наноотвори. Това помага за разбирането на електрическия транспорт и магнитните свойства, което е важно за развитието на спинтрониката и оптоелектрониката.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Designing Advanced Functionalities through controlled NanoElement integration in OXide thin films

The core problem that DAFNEOX Project address is the controlled integration of nanoelements (as nanoparticles or nanochains) in regular patterns on top of self-organized materials, mainly oxide thin films for applications from spintronics and catalytics to optoelectronics. Beating the intrinsic limitations of lithographic methods for minituarization is one of highest nanoscience challenges. Our bottom-up approach take advantage of self-assembling phenomena occurring during the growth of thin films by physical methods. By understanding the mechanisms controlling these phenomena we have prepared a wide variety of nanotemplated oxides with ordered arrays of nanoholes over a large surface. Furthermore, oxides being a large family of materials, they offer unique opportunities due to the wide range of reported functional properties. We have obtained nanotemplates with properties ranging from ferromagnetic or ferroelectric, metallic, semimetallic or insulating. Later on, these nanotemplates have been used for the guided self-assembly of other nanoobjects as, for example, nanoparticles and nanochains. This has opened the possibility to study charge transport properties in individual nanoelements by the use of nanogap devices where new phenomena may be expected due to the reduced dimensions. Expertise in studying optical, transport and magnetic properties has allowed us to establish the link between nanostructured materials and their functional properties as, for example, in the study of resistive switching phenomena, spin dynamics or magnetization reversal, all of them relevant in spintronic or optoelectronic applications Our project brings together expertise in experimental and theoretical physics and a substantial effort was devoted to understand the properties of these nanoelements as model systems for the interpretation of complex nanoparticle/oxide behavior during self-assembling phenomena. Theoretical models have been used to explain self-assembling processes of magnetic nanoparticles into close-packed arrangements and into large macroscopic chains. In summary, the advances that have been achieved through this interdisciplinary research will contribute to the design of a set of novel nanostructures of intelligent materials, which could be useful in variety of physical devices such as sensors, catalysts or magnetic storage media.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The aim of this project is to develop new inexpensive, scalable and efficient bottom –up approach for positioning nanoobjects in regular patterns and to implement them in optoelectronic technology, which is the major challenge in nanotechnology today. The synergy between the quasi zero-dimensional elements and functional oxides with an exceptional range of properties (ferromagnetism, ferroelectricity, …) opens a completely new concept to nanoelectronics. Devices based on these materials would offer functionality beyond the achievable limits, with wide range of applications from spintronics and catalytics to optoelectronics.To achieve this objective, controlled integration of nanoelements on top of self-organized functional oxide nanotemplates will be explored. Optimum conditions will be achieved by a synergetic approach: growth processes will be guided by theoretical studies followed by an exhaustive charge transport, optical and magnetic characterization. In addition, transport and optoelectronic properties of the individual nanoelements will be studied separately to gain insides about their fundamental characteristics and serve as a model system in the interpretation of complex nanoparticle/oxide behaviour.The specific applications targeted in this proposal are based on novel photonic and spintronic materials. We will focus on obtaining devices with the highest photonic response and spin control. Our project brings together experts in experimental and theoretical physics including materials science and advanced magnetoelectronic/spectroscopic expertise and one spin-off which will ensure proof of concept of a new generation of optoelectronic devices. The complementary background of different groups and the foreseen mobility will assure the good development of this proposal. The proposal will be realised in iterative steps between preparation, advanced characterization and theoretical prediction up to implementation process through Spin-off Company.

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз