André Cidrim

Detecting entanglement from macroscopic measurements of the electric field and its fluctuations

Pedro Rosario [1], Alan C. Santos [1,2], Nicola Piovella [3], Robin Kaiser [4,1], André Cidrim, Romain Bachelard [1]

Abstract

To address the outstanding task of detecting entanglement in large quantum systems, entanglement witnesses have emerged, addressing the separable nature of a state. Yet optimizing witnesses, or accessing them experimentally, often remains a challenge. We here introduce a family of entanglement witnesses for open quantum systems, based on the electric field -- its quadratures and the total fluorescence. More general than spin-squeezing inequalities, it can detect new classes of entangled states, as changing the direction for far-field observation opens up a continuous family of witnesses, without the need for a state tomography. Their efficiency is demonstrated by detecting, from almost any direction, the entanglement of collective single-photon states, such as long-lived states generated by cooperative spontaneous emission. Able to detect entanglement in large quantum systems, these electric-field-based witnesses can be used on any set of emitters described by the Pauli group, such as atomic systems (cold atoms and trapped ions), giant atoms, color centers, and superconducting qubits.

Phononic bright and dark states: Investigating multi-mode light-matter interactions with a single trapped ion

Harry Parke [1], Robin Thomm [1], Alan C. Santos [1,2,3], André Cidrim, Gerard Higgins [1,4,5], Marion Mallweger [1], Natalia Kuk [1], Shalina Salim [1], Romain Bachelard [2,6], Celso J. Villas-Boas [2], Markus Hennrich [1]

Abstract

Interference underpins some of the most practical and impactful properties of both the classical and quantum worlds. In this work we experimentally investigate a new formalism to describe interference effects, based on collective states which have enhanced or suppressed coupling to a two-level system. We employ a single trapped ion, whose electronic state is coupled to two of the ion's motional modes in order to simulate a multi-mode light-matter interaction. We observe the emergence of phononic bright and dark states for both a single phonon and a superposition of coherent states and demonstrate that a view of interference which is based solely on their decomposition in the collective basis is able to intuitively describe their coupling to a single atom. This work also marks the first time that multi-mode bright and dark states have been formed with the bounded motion of a single trapped ion and we highlight the potential of the methods discussed here for use in quantum information processing.