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Dmitry Baranov. Portrait.

Dmitry Baranov

Associate senior lecturer

Dmitry Baranov. Portrait.

Halide perovskite artificial solids as a new platform to simulate collective phenomena in doped Mott insulators

Author

  • Alessandra Milloch
  • Umberto Filippi
  • Massimo Capone
  • Dmitry Baranov
  • Liberato Manna
  • Claudio Giannetti

Summary, in English

The development of Quantum Simulators, artificial platforms where the predictions of many-body theories of correlated quantum materials can be tested in a controllable and tunable way, is one of the main challenges of condensed matter physics. We introduce artificial lattices made of lead halide perovskite nanocubes as a new platform to simulate and investigate the physics of correlated quantum materials. The ultrafast optical injection of quantum-confined excitons plays a similar role to doping in real materials. We show that, at large photo-doping, the exciton gas undergoes an excitonic Mott transition, which can be mapped on the insulator-to-metal transition of the Hubbard model in a magnetic field. At lower photo-doping, the long-range interactions drive the formation of a collective superradiant state, in which the phases of the excitons generated in each single perovskite nanocube are coherently locked. Our results demonstrate that time-resolved experiments span a parameter region of the Hubbard model in which long-range and phase-coherent orders emerge out of a doped Mott insulating phase. This physics is relevant for a broad class of phenomena, such as superconductivity and charge-density waves in correlated materials whose properties are captured by doped Hubbard models.

Department/s

  • Chemical Physics
  • NanoLund: Centre for Nanoscience

Publishing year

2023-09-04

Language

English

Document type

Conference paper: abstract

Topic

  • Condensed Matter Physics (including Material Physics, Nano Physics)

Conference name

CMD30 FisMat 2023

Conference date

2023-09-04 - 2023-09-08

Conference place

Milan, Italy

Status

Published