Ultra-long quantum walks via spin–orbit photonics

Author:

Di Colandrea FrancescoORCID,Babazadeh Amin,Dauphin Alexandre1ORCID,Massignan Pietro2ORCID,Marrucci Lorenzo3,Cardano FilippoORCID

Affiliation:

1. ICFO—Institut de Ciencies Fotoniques

2. Universitat Politècnica de Catalunya

3. CNR-ISASI

Abstract

The possibility of fine-tuning the couplings between optical modes is a key requirement in photonic circuits for quantum simulations. In these architectures, emulating the long-time evolution of particles across large lattices requires sophisticated setups that are often intrinsically lossy. Here we report ultra-long photonic quantum walks across several hundred optical modes, obtained by propagating a light beam through very few closely stacked liquid-crystal metasurfaces. By exploiting spin–orbit effects, these implement space-dependent polarization transformations that mix circularly polarized optical modes carrying quantized transverse momentum. As each metasurface implements long-range couplings between distant modes, by using only a few of them we simulate quantum walks up to 320 discrete steps without any optical amplification, far beyond state-of-the-art experiments. To showcase the potential of this method, we experimentally demonstrate that in the long time limit a quantum walk affected by dynamical disorder generates maximal entanglement between two system partitions. Our platform grants experimental access to large-scale unitary evolutions while keeping optical losses at a minimum, thereby paving the way to massive multi-photon multi-mode quantum simulations.

Funder

European Regional Development Fund

Institució Catalana de Recerca i Estudis Avançats

Agencia Estatal de Investigación

“La Caixa” Foundation

Horizon 2020 Framework Programme

Narodowe Centrum Nauki

H2020 European Institute of Innovation and Technology

Generalitat de Catalunya

FUNDACIÓ Privada MIR-PUIG

Fundación Cellex

European Research Council

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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1. Manifestation of the quantum metric in chiral lattice systems;Communications Physics;2024-08-05

2. Photonic quantum walk with ultrafast time-bin encoding;Optica;2024-07-18

3. Recent advances in spin-orbit photonic technologies;Liquid Crystals Optics and Photonic Devices;2024-06-18

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