SPINSINQUASICRYSTALS · Magnetic Moments in Geometrically Frustrated Systems with Quasiperiodic Order and Disorder
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2014-02-01 → 2016-01-31
- Финансиране от ЕС
- 221 606 €
- Участници
- 1
- Схема
- MC-IEF
Линиите свързват координатора с партньорите.
Накратко на български
Магнитните свойства на квазикристалите, като тези при редките земи, се анализират чрез теоретични модели и симулации. Това помага за по-доброто разбиране на необичайната атомна структура и начина, по който електроните влияят върху магнетизма в тези материали.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Magnetic Moments in Geometrically Frustrated Systems with Quasiperiodic Order and Disorder
Quasicrystals with their unusual atomic structure have rather exotic physical properties, and so far we lack a good theoretical understanding for most of them. During the project we worked on models to get a better insight into the magnetic properties of quasicrystals. An important question in this context is how their rather exotic electronic properties (e.[*]g[/*]. pseudogap at the Fermi energy and multifractal electronic states) influences the magnetism in this material class. We focused on studying theoretical models for rare-earth quasicrystals. This is a common type of magnetic quasicrystals which has well-defined local moments at concentrations of 5-10% interacting via long-range magnetic interactions (so-called RKKY interactions) mediated by the conduction electrons. To model these systems we applied a two-step theoretical approach: First, we designed an improved numerical method to compute the form of the RKKY interactions using a tight-binding Hamiltonian defined on quasiperiodic tilings. We found that the coupling between pairs of magnetic moments depends not only on their distance but also varies strongly with the position on the tiling. Although we find ferromagnetic and antiferromagnetic bonds as in periodic systems, the magnetic interactions do not show a well-defined spatial period with a Fermi wave vector as they do in crystalline systems. In a second step, we studied the magnetic properties of quasiperiodic systems with these RKKY interactions using extensive Monte Carlo simulations. For all systems we found the emergence of strongly-coupled spin clusters with weak inter-cluster coupling on certain patterns of the tiling and the formation of long-range magnetic order at low temperature. This order persists across a range of models, including different tilings, choices of magnetic site and value of the Fermi energy. Moreover, we find a finite domain wall energy per unit length in the ordered states. For this reason, quasi-periodic magnetic order can be expected to be robust against perturbations that lead only to small changes in RKKY interactions. We also applied finite size scaling to show that the critical behaviour is consistent with the two-dimensional Ising universality class. The formation of strongly coupled clusters and their fluctuations even at very low temperatures appears to be consistent with experimental observations. In contrast, the nature of the ordering transition in the model shows clear differences to experiments, which typically show a spin-glass-like freezing of the magnetic moments at low temperatures. However, disorder of the atomic sites is very common in quasicrystals. Hence, a special focus was given to the study of disorder phenomena in these systems, which have been hardly addressed in the research yet. To model this site disorder we add a random potential to the conduction electrons. Repeating the calculations for the RKKY interactions and the Monte Carlo simulations, we found that long-range magnetic order in quasiperiodic systems is destroyed at a finite disorder strength. For these systems we also do not find an increase in the domain wall energy with unit length which indicates a similarity to the experimentally observed spin-glass behaviour.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
Understanding the magnetic properties of materials arising from their atomic structure still poses many questions especially if effects like quasiperiodicity and disorder are taken into account. The project SpinsInQuasicrystals aims to obtain a better understanding of the magnetic properties of the material class of quasicrystals. A special focus is given to disorder phenomena in these systems, which are an intrinsic property of quasicrystals and have been hardly addressed in the research of quasiperiodic spin systems yet.The interest in the properties of quasiperiodic systems has grown significantly since the discovery of quasicrystals by Shechtman et al. in 1982 (Nobel Prize in Chemistry 2011). Quasicrystals are materials with a perfect long-range atomic order without having a three-dimensional translational periodicity but instead rotational symmetries which are forbidden for conventional crystals. Further, these materials can be classified to possess a degree of order intermediate between periodic and amorphous systems. Many physical properties of quasiperiodic systems are still not completely understood and also several new phenomena have been observed for these materials.During the project we systematically study the alignment of magnetic moments in quasiperiodic structures and disorder phenomena in these systems with numerical methods like Monte Carlo simulations as well as analytical techniques as e.g. spin-wave approximation and renormalization group approaches. The quasiperiodic materials are modeled as quasiperiodic tilings, which are suitable to describe the nonperiodic atomic structure of this material class and are commonly used for numerical and theoretical studies of quasicrystals.
Оригинален текст от CORDIS (на английски).
Участници
- THE CHANCELLOR, MASTERS AND SCHOLARS OF THE UNIVERSITY OF OXFORD · OxfordКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
