Stefan Nimmrichter

Controlling the spontaneous emission of trapped ions

Tommaso Faorlin, Benjamin Yadin [2], Yannick Weiser, Gabriel Araneda [3], Stefan Nimmrichter [2], Lorenz Panzl, Thomas Lafenthaler, Rainer Blatt [1], Thomas Monz [1], Giovanni Cerchiari [1]

Abstract

We propose an experimental setup for manipulating the spontaneous emission of trapped ions, based on a spatial light modulator. Anticipated novelties include the potential to entangle more than two ions through a single photon detection event and control the visibility for spatially distinguishable emitters. The setup can be adapted to most of the existing ion traps commonly used in quantum technology.

Quantum and classical dynamics of a three-mode absorption refrigerator

Stefan Nimmrichter [1], Jibo Dai [1,2], Alexandre Roulet [1,3], Valerio Scarani [1,4]

Abstract

We study the quantum and classical evolution of a system of three harmonic modes interacting via a trilinear Hamiltonian. With the modes prepared in thermal states of different temperatures, this model describes the working principle of an absorption refrigerator that transfers energy from a cold to a hot environment at the expense of free energy provided by a high-temperature work reservoir. Inspired by a recent experimental realization with trapped ions, we elucidate key features of the coupling Hamiltonian that are relevant for the refrigerator performance. The coherent system dynamics exhibits rapid effective equilibration of the mode energies and correlations, as well as a transient enhancement of the cooling performance at short times. We find that these features can be fully reproduced in a classical framework.

Quantum absorption refrigerator with trapped ions

Gleb Maslennikov [1], Shiqian Ding [1], Roland Hablutzel, Jaren Gan [1], Alexandre Roulet [1], Stefan Nimmrichter [1], Jibo Dai [1], Valerio Scarani [1,2], Dzmitry Matsukevich [1,2]

Abstract

Thermodynamics is one of the oldest and well-established branches of physics that sets boundaries to what can possibly be achieved in macroscopic systems. While it started as a purely classical theory, it was realized in the early days of quantum mechanics that large quantum devices, such as masers or lasers, can be treated with the thermodynamic formalism. Remarkable progress has been made recently in the miniaturization of heat engines all the way to the single Brownian particle as well as to a single atom. However, despite several theoretical proposals, the implementation of heat machines in the fully quantum regime remains a challenge. Here, we report an experimental realization of a quantum absorption refrigerator in a system of three trapped ions, with three of its normal modes of motion coupled by a trilinear Hamiltonian such that heat transfer between two modes refrigerates the third. We investigate the dynamics and steady-state properties of the refrigerator and compare its cooling capability when only thermal states are involved to the case when squeezing is employed as a quantum resource. We also study the performance of such a refrigerator in the single shot regime, and demonstrate cooling below both the steady-state energy and the benchmark predicted by the classical thermodynamics treatment.