Completed Physics & Astronomy Computing & AI

Designing Out-of-Equilibrium Many-Body Quantum Systems

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AI plain-English summary

Ultracold atoms trapped in laser grids will serve as testbeds for designing the next generation of quantum devices, much as wind tunnels test aircraft before they are built. The problem is that today’s information technology relies on controlling systems that are not in equilibrium—electrons switching in a transistor, for example—but engineers lack a systematic way to design such dynamics at the quantum scale. As electronic components shrink and quantum computers emerge, noise and decoherence make it even harder to predict how these many-body systems will behave. This project will build quantum simulators using ultracold gases to explore three areas: faster, more energy-efficient switching for classical computers; quantum-enhanced sensors for navigation or medical imaging; and the engineering of entirely new quantum phenomena. If successful, the work could underpin the scaling up of quantum devices after 2020, when the UK’s National Quantum Technology Programme begins delivering prototypes. The research is fundamental science. It will not produce a commercial product within the grant period. But like early work on lasers or semiconductors, it aims to create the knowledge base that future engineers will need to build the next generation of communication and computing infrastructure.

View original technical description
Huge amounts of data are routed through the internet and are being processed by our computers and mobile phones every second. Always being connected to the internet has transformed many aspects of our lives, from the way we do our shopping to how we meet friends. The demand for further improving our ability to process data is driven by ever more devices being connected to the internet and services being moved online to improve our quality of life. The physical principles underlying our technology to store and process data are based on our understanding of out-of-equilibrium dynamics. Better control of this physics is crucial to further shrinking electronic devices and to address the major challenge of developing energy-efficient switching and communications links. Such further progress in information processing technologies is expected to heavily rely on quantum effects like superposition and entanglement in the near future. In addition, as the fruits of the recently initiated National Quantum Technology Programme start to become available after 2020, it will be even more important to have the knowledge in place to be able to face the next generation of technological challenges, such as the scaling up of the newly developed quantum devices. How to exploit the advantages of these increasingly complex devices in the presence of noise and decoherence is intrinsically an issue of out-of-equilibrium many-body quantum physics. It is therefore crucial to put methods in place now that will underpin the design of out-of-equilibrium quantum systems. Our vision is to explore, understand, and design out-of-equilibrium quantum dynamics that are relevant for such future communication and quantum technologies, using quantum simulators with ultracold atomic gases in optical potentials. Ultracold gases are a unique platform in that they offer controllability and versatility in the quantum regime that is currently unparalleled by any other quantum system. We will set up and investigate ultracold atom simulations to help planning and designing out-of-equilibrium many-body quantum dynamics similarly to how wind tunnels are utilized in aerodynamics. This project will capitalise on these capabilities by exploring three broad aspects of out-of-equilibrium dynamics that are especially relevant for future technologies: (i) switching behaviour of driven quantum systems, which could also be used to design enhanced classical information processing devices; (ii) driven quantum systems as quantum-enhanced sensors; and (iii) engineering emergent phenomena in driven quantum systems. Our activity will bind together existing internationally leading researchers within the UK on a novel common project of high scientific interest and technological relevance. This provides a unique opportunity for the UK to adopt a world-leading position in the use of quantum simulators to explore out-of-equilibrium dynamics in quantum many-body systems.

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Researchers

Andrew Daley (Principal Investigator)Dieter Jaksch (Co-Investigator)Nigel Cooper (Co-Investigator)Robert Smith (Co-Investigator)Stefan Kuhr (Co-Investigator)Ulrich Schneider (Co-Investigator)Zoran Hadzibabic (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Non-equilibrium Dynamics of Quantum Open Systems: From Fundamental Theory to Applications in Cold Atoms, Superconducting Circuits and Quantum Glasses
Driven-Dissipative Ensembles of Ultracold Atoms in Optical Lattices
NAQUAS: Non-equilibrium dynamics in Atomic systems for QUAntum Simulation
Quantum Many-Body Physics with Ultracold Polar Molecules
Interactive dynamics of many-body quantum systems

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Research Grant

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