FP6Индивидуална стипендия2004–2006

UNIMAGEL · Uniaxal magnetic gels: Kinetics of formation of field sensitive and field responsive hybrid materials and their mechanical anisotropy

6РП — Действия „Мария Кюри“

Период
2004-03-01 → 2006-02-28
Финансиране от ЕС
157 652 €
Участници
1
Схема
EIF

Линиите свързват координатора с партньорите.

Накратко на български

Магнитните гелове, съставени от полимери и подредени магнитни частици, се изследват за създаване на материали като изкуствени мускули. Разбирането на техните свойства помага за разработването на устройства, които реагират на магнитни полета.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Final Activity Report Summary - UNIMAGEL (Uniaxal magnetic gels: Kinetics of formation of field sensitive and field responsive hybrid materials and their mechanical anisotropy)

This project was dedicated to the study of uniaxial magnetic gels, which are promising candidates for bio-mimetic materials, e.g., artificial muscles, and/or for actuators. Uniaxial magnetic gels consist of a polymeric network with embedded magnetic particles aligned along a common direction. Macroscopically, these hybrid materials integrate the properties of their building parts, resulting in elastic and magnetic field responsive materials. The special emphasis of this project was on the, before merely unstudied, kinetics of formation of uniaxial magnetic gels and on their anisotropic mechanical, optical, and magnetic properties. The set of experimental techniques available in the host group offered unique possibilities for this study, combining mechanical (piezo-rheology) and optical (microscopy) techniques on the same sample. Piezo-rheology is ideal for the study of fragile materials, like forming gels, as it allows for very small applied strains. To study the optical and mechanical properties of the samples in a magnetic field, we added a light scattering set-up on the piezo-rheometer. In the chosen model system (magnetite particles covered with a thin silica layer embedded in PDMS) the magnetic interaction is strong enough to overcome thermal motion but weak enough so that the system is stable over longer periods. We have shown that small particle concentrations (less than 3.5 wt %) are sufficient to induce strong anisotropies in the mechanical, optical, and magnetic properties of the hybrid material. The superstructure of the magnetic particles picks up easily an anisotropy induced by an applied magnetic field. This internal anisotropy is transferred to the macroscopic properties of the hybrid material in a very efficient way; its manifestations can be observed in both liquid (polymer melts) and elastic matrices. We have shown that the anisotropy of the polymer gel is the result of a two-step formation process: First, the superstructure of the magnetic particles is turned anisotropic. Then, the forming polymer gel integrates this anisotropy into its properties. Macroscopically, uniaxial magnetic gels react to magnetic fields by aligning their internal anisotropy axis with the applied magnetic field, i.e., they are field responsive materials. This project was intrinsically interdisciplinary; it included, e.g., the physico-chemical preparation of the sample, the experimental study of the physical properties of the uniaxial magnetic gel, and the theoretical interpretation of the results.

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

Цел на проекта

The proposed Marie Curie Fellowship is dedicated to the study of uniaxial magnetic gels, which are promising candidates for biomimetic materials, e.g. artificial muscles. Magnetic gels combine a polymeric network with embedded nanometer- or micrometer-sized magnetic particles.Macroscopically, this hybrid material integrates the properties of its building parts, resulting in an elastic and magnetic field-responsive 'intelligent' material. A number of studies (mainly on isotropic, rarely on uniaxial, magnetic gels) has proven the high potential of this new class of materials. The special emphasis of this project is on the ¿ as yet unstudied ¿ kinetics of the formation of uniaxial magnetic gels and on its anisotropic mechanical properties.A good insight in the formation process is essential for an efficient design and optimization of the material. The set of experimental techniques available in the host group offers unique possibilities for this study, combining various mechanical (piezo-rheology and ultrasound methods) and optical (light scattering and microscopy) techniques.Piezo-rheology is ideal for the study of fragile materials, like forming gels, as it allows for very small applied strains, a large frequency range, a small sample thickness and can be combined in situ with optical techniques and external fields. Comparison of the experimental results, for example with percolation theories, will lead to detailed models of the formation process and provide a basis for material optimization.With this fellowship in a worldwide leading laboratory the applicant will:i) acquire complementary skills;ii) strengthen existing and create new collaborations;iii) work in an environment which stimulates his creative potential;iv) intensify his interdisciplinary research work, and thus contribute as an active and independent researcher to the European Research Area in his field of interest, the dynamics of knowledge-based materials.

Оригинален текст от CORDIS (на английски).

Участници

  • UNIVERSITE LOUIS PASTEUR · STRASBOURGКоординаторФранция

Връзки

Данни: CORDIS, © Европейски съюз