MEHYB · Many-body effects in hybrid quantum systems
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-04-01 → 2017-03-31
- EU contribution
- €166,157
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Many-body effects in hybrid quantum systems
The development of novel technologies, which are based on fundamental principles of quantum mechanics like superpositions or entanglement, is currently very actively pursued. Not only researchers, but also more and more companies devote considerable efforts to the realization of quantum computers, secure quantum communication networks, or quantum simulators for material science and chemistry applications. This development is pursed in parallel with a variety of different physical systems including, for example, single photons, trapped atoms and ions, defects centers in solids or superconducting quantum circuits. The interdisciplinary field of hybrid quantum systems aims at the integration of different optical, atomic and solid-state systems to harness their combined functionalities in an optimal way. For example, optical photons are excellent information carriers, while electronic spins and superconducting circuits are ideally suited for storing and processing quantum information, respectively. However, these systems do not naturally interact with each other and therefore new schemes for artificially interfacing quantum systems of different types must be explored. In the current project we have theoretically analyzed a set of hybrid quantum systems involving superconducting circuits, electronic spins in solids and tiny mechanical resonators. The original objective was to investigate, how the combined functionalities of these system can be used for enhancing magnetometry applications and for realizing new types of quantum simulators for unconventional many-body interactions. In this context we have specifically investigated new efficient schemes for coupling a single electronic spin to the quantized motion of a mechanical nanoresonator. This interface constitutes a basic building block for hybrid quantum systems, where, for example, quantum information is stored in the spin-quantum memory, while the mechanical system is used as an interconnection to superconducting circuits or optical photons. We further showed, how superconducting circuits can be used to simulate light-matter interactions in the so-called ultrastrong coupling regime, which is not accessible with real atoms and photons. In this work we discovered a new quantum many-body effect, which was overlooked in related studies before and can be used as a natural entanglement resource. Finally, we found an unexpected noise-evasion mechanism for quantum communication schemes, which enables a faithful transmission of quantum information through noisy channels. This mechanism makes quantum communication over electric microwave channels possible, where otherwise the weak quantum signal would be washed out by an unavoidable background of thermal microwave photons. In conclusion, in this project several important results for the further development of hybrid quantum systems and quantum technologies based on superconducting quantum circuits have been obtained. This concerns, in particular, our quantum communication protocol for noisy channels, which enables a completely approach for intra-city quantum networks based on microwave technology only.
Data: CORDIS, © European Union
Project objective
The interdisciplinary field of hybrid quantum systems pursues the integration of different quantum systems from AMO and solid-state physics to harness their combined functionalities in an optimal way. Prominent examples are long-lived spin ensemble quantum memories for superconducting qubits or (opto-)mechanical quantum transducers, which are currently experimentally implemented for future quantum information processing applications.The general aim of this project is to identify and analyze a new and range of applications for hybrid quantum systems for the study of non-equilibrium quantum many-body effects and phase transitions in open quantum systems. For that purpose the hybrid system approach offers many, still unexplored advantages for combining dissipative and coherent elements in a controllable and scalable way. The focus of this project is two-fold: i) We will analyze the implementation of collective spin models in hybrid quantum system arrays consisting of spin ensembles coupled to microwave cavities and show that this system can serve as prototype model for identifying universal features of non-equilibrium phase transitions in open quantum systems. ii) We will study superconducting qubit arrays with integrated nanomechanical resonators for the implementation of spin models coupled to engineered local reservoirs. This will provide a first realistic approach for simulating open many-body quantum systems coupled to unconventional reservoirs, exhibiting, for example, strong site-dependent temperature variations, or mixed positive and negative temperatures. Analyzing these specific models will open a path for hybrid quantum system arrays as a new quantum simulation platform for non-equilibrium and open quantum many-body systems.
Original text from CORDIS.
Participants
- TECHNISCHE UNIVERSITAET WIEN · WienCoordinatorAustria
Links
- View on CORDIS
- DOI: 10.3030/657788
- http://ati.tuwien.ac.at/research_areas/quantum_optics_theory/publications/EN/
Data: CORDIS, © European Union
