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    B03 Theory of fractionalized topological phases. Topological phases with higher-order boundary states July It also contains a more fundamental line of activity, aiming at the construction of a mathematically rigorous classification of non-translationally invariant topological matter. Entangled mesoscopic quantum devices This project focuses on the hierarchical construction of strongly entangled quantum devices. A second line of activity aims at classifying the fractionalized excitations "spinons" of strongly entangled spin liquids.


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    C03 Signatures of Majorana bound states. A02 Gapless topological phases.

    The goal of this project is the investigation of the subtle interplay between dissipation and topology.

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    Design and functionality of entangled quantum device. Engineering topological states of matter Project C02 will pursue the construction of entangled topological states of matter made from hybrids of well-understood building blocks. We start from small building blocks representing either i an effective large spin formed on a quantum dot, or ii the fermionic zero mode in a mesoscopic topological superconductor hosting four Majorana bound states.

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    Department of Condensed Matter Physics.

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    A03 Disordered topological matter. Niels Bohr Institute University of Copenhagen. Engineering topological states of matter Project C02 will pursue the construction of entangled topological states of matter made from hybrids of well-understood building blocks.

    Project C03 will study topological superconductivity based on hybrids of conventional superconductors and semiconductors.

    Design and functionality of entangled quantum device.

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    The server encountered an error. It also contains a more fundamental line of activity, aiming at the construction of a mathematically rigorous classification of non-translationally invariant topological matter.

    Measurement and manipulation of topological excitations This project explores the influence of measurement processes on entangled states of matter. We seek analytic, numerical, and experimental methods for quantifying entanglement in fermionic and bosonic many-body systems. The emphasis of this research is the targeted use of suitably tailored dissipative processes to prepare topologically non-trivial states in a robust manner. C02 Engineering Topological States of Matter.

    A03 Disordered topological matter.

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    While noninteracting topological phases are by now well understood, we are only on the verge of understanding the wealth of fractionalized topological phases, in which interactions stabilize novel types of long-range entanglement.

    Physics of topological excitations. In this way, important applications for quantum information, such as the creation of quantum memories, will be enabled. Engineering topological states of matter Project C02 will pursue the construction of entangled topological states of matter made from hybrids of well-understood building blocks. Design and functionality of entangled quantum device. Workshop Bad Honnef 13 — 16 June

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    The emphasis of this research is the targeted use of suitably tailored dissipative processes to prepare topologically non-trivial states in a robust manner.

    However, if properly designed, they need not counteract mechanical correlations, but can even create them. Topological phases with higher-order boundary states July A02 Gapless topological phases.

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    Workshop Bad Honnef 13 — 16 June Dissipative processes result from the interaction of a system's degrees of freedom with their environment.

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    Gapless topological phases Initially, research on topological matter focused on gapped phases, such as topological insulators or superconductors.

    We seek analytic, numerical, and experimental methods for quantifying entanglement in fermionic and bosonic many-body systems. Entanglement Project B01 will further the conceptual understanding of entanglement in the context of topological order. B02 Topology, dissipation, and quantum memories.

    Physics Department, Dahlem Center.

    1 comments

    • Yozshucage

      This platform is quite advanced experimentally and has already allowed to establish the existence of Majorana bound states.