Data corresponding to the publication: "SU(N) altermagnetism: Lattice models, magnon modes, and flavor-split bands" by P. M. Cônsoli and M. Vojta (2025)

References to related material
datacite.relatedItem.IsSupplementTo

https://arxiv.org/abs/2402.18629

Type of the data
datacite.resourceTypeGeneral

Collection

Total size of the dataset
datacite.size

701931

Author
dc.contributor.author

Monteiro Consoli, Pedro

Author
dc.contributor.author

Vojta, Matthias

Upload date
dc.date.accessioned

2025-04-11T08:01:27Z

Publication date
dc.date.available

2025-04-11T08:01:27Z

Publication date
dc.date.issued

2025-04-11

Abstract of the dataset
dc.description.abstract

This dataset contains the scripts that generated the data and figures from the preprint P. M. Cônsoli and M. Vojta, "SU(N) altermagnetism: Lattice models, magnon modes, and flavor-split bands", arXiv:2402.18629, which has been accepted for publication in Physical Review Letters.

Public reference to this page
dc.identifier.uri

https://opara.zih.tu-dresden.de/handle/123456789/1445

Public reference to this page
dc.identifier.uri

https://doi.org/10.25532/OPARA-825

Publisher
dc.publisher

Technische Universität Dresden

Licence
dc.rights

Attribution-NonCommercial-ShareAlike 4.0 Internationalen

URI of the licence text
dc.rights.uri

http://creativecommons.org/licenses/by-nc-sa/4.0/

Specification of the discipline(s)
dc.subject.classification

3::32::307::307-02

Title of the dataset
dc.title

Data corresponding to the publication: "SU(N) altermagnetism: Lattice models, magnon modes, and flavor-split bands" by P. M. Cônsoli and M. Vojta (2025)

opara.descriptionSoftware
opara.descriptionSoftware

Mathematica 13

Project abstract
opara.project.description

New materials with tailored functionalities are of paramount importance for all modern technologies, from information processing to sustainable energy and health care. In the 21st century condensed-matter physics, as the relevant scientific discipline, has made the revolutionary discovery that the mathematical concept of topology is a fundamental key for the understanding of quantum-mechanical states of matter. This insight has sparked a scientific boom worldwide, leading to the discovery of many new topological quantum materials and their remarkable physical properties, with key contributions from Würzburg (observation of the quantum spin Hall effect) and Dresden (prediction of magnetic monopoles in spin ice). Yet, the field is still in its infancy and, therefore, we propose the excellence cluster "Complexity and Topology in Quantum Matter (ct.qmat)" as a unique research platform for comprehensive studies of the fundamental physics of topological quantum materials and their vast application potential. The cluster unites physicists, chemists, and material scientists in their efforts to understand, control, and apply these fundamentally new states of quantum matter. Based on the strong and complementary scientific expertise and infrastructure in Würzburg and Dresden, ct.qmat will span a broad research program – ranging from materials synthesis via experimental and theoretical studies of novel topological phenomena and their functional control to the design and test of application-relevant device concepts. To this end, the cluster is structured into four Research Areas, with the first three focusing on the role of topology and complexity in different physical settings, namely (A) charge transport, (B) magnetism, and (C) light-matter interaction. Area (D) is devoted to the overarching objective of deriving functionalities from topological phenomena and exploring their application potential for, e.g., loss-less electronics or quantum computing. These activities are based on and will extend the manifold research collaborations between both universities and their partner institutions. Structural elements of the cluster comprise additional professorships and junior research groups, intended to strengthen the expertise within the Research Areas and building scientific bridges between them, as well as the establishment and joint use of complementary research infrastructures. Further central cluster components are the structured support and promotion of young researchers at all qualification levels from PhD students to early career investigators, and the advancement of equal opportunity and diversity in science. Taking advantage of the synergies resulting from the collaboration of both universities, the cluster will thus facilitate excellent training and working conditions. Attracting the best students and scientists will be decisive for the central strategic goal of ct.qmat, namely to become a leading international hub for quantum matter research.

Public project website(s)
opara.project.publicReference

https://www.ctqmat.de/

Project title
opara.project.title

Cluster of Excellence 2147 "ct.qmat - Complexity and Topology in Quantum Matter"
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