Schrödinger cat states of a macroscopic charged particle co-trapped with an ion
arXiv:2111.11574 · doi:10.1103/PhysRevA.105.033109
Abstract
We investigate the feasibility of observing matter-wave interference of a micron-sized charged particle by putting it into a quantum superposition of states with a distinguishable separation. In the proposed method, an atomic ion is confined in a linear Paul trap along with the massive charged particle so that we can make use of the extensive toolbox of experimental techniques developed to control quantum states of trapped ions, and to manipulate their motions with high fidelity operations. This approach provides a stringent test of the predictions of dynamical reduction models of delocalised quantum superpositions of a particle, reaching macroscopicities of up to .
16 pages, 5 figures
References in corpus (11)
- Motional Quantum Ground State of a Levitated Nanoparticle from Room Temperature
- Levitodynamics: Levitation and control of microscopic objects in vacuum
- Real-time optimal quantum control of mechanical motion at room temperature
- Decoherence of matter waves by thermal emission of radiation
- Lower and Upper Bounds on CSL Parameters from Latent Image Formation and IGM Heating
- Macroscopicity of Mechanical Quantum Superposition States
- Coherent laser spectroscopy of highly charged ions using quantum logic
- Decoherence effects in non-classicality tests of gravity
- Benchmarking a high-fidelity mixed-species entangling gate
- Quantum experiments with microscale particles
- Quantum electromechanics with levitated nanoparticles