Semi-device-independent framework based on natural physical assumptions
Thomas Van Himbeeck, Erik Woodhead, Nicolas J. Cerf, Ra\'ul, Garc\'ia-Patr\'on, Stefano Pironio

TL;DR
This paper introduces a physically motivated semi-device-independent framework based on energy constraints, enabling certified randomness and potential quantum cryptography applications with optical systems.
Contribution
It proposes a new semi-device-independent approach using mean energy bounds instead of dimension assumptions, applicable to optical quantum protocols.
Findings
Quantum correlations can surpass classical bounds under energy constraints.
The framework enables certified randomness generation in optical schemes.
Simple optical setup with photon number constraints can be used for quantum cryptography.
Abstract
The semi-device-independent approach provides a framework for prepare-and-measure quantum protocols using devices whose behavior must not be characterized nor trusted, except for a single assumption on the dimension of the Hilbert space characterizing the quantum carriers. Here, we propose instead to constrain the quantum carriers through a bound on the mean value of a well-chosen observable. This modified assumption is physically better motivated than a dimension bound and closer to the description of actual experiments. In particular, we consider quantum optical schemes where the source emits quantum states described in an infinite-dimensional Fock space and model our assumption as an upper bound on the average photon number in the emitted states. We characterize the set of correlations that may be exhibited in the simplest possible scenario compatible with our new framework, based on…
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