Orthogonality Catastrophe in Quantum Sticking
arXiv:1112.4544 · doi:10.1103/PhysRevLett.109.120401
Abstract
The probability that a particle will stick to a surface is fundamental to a variety of processes in surface science, including catalysis, epitaxial growth, and corrosion. At ultralow energies, how particles scatter or stick to a surface affects the performance of atomic clocks, matter-wave interferometers, atom chips and other quantum information processing devices. In this energy regime, the sticking probability is influenced by a distinctly quantum mechanical effect: quantum reflection, a result of matter wave coherence, suppresses the probability of finding the particle near the surface and reduces the sticking probability. We find that another quantum effect can occur, further shaping the sticking probability: the orthogonality catastrophe, a result of the change in the quantum ground state of the surface in the presence of a particle, can dramatically alter the probability for quantum sticking and create a superreflective surface at low energies.
10 pages, 2 figures
References in corpus (6)
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Cited by in corpus (11)
- Orthogonality catastrophe and decoherence in a trapped-Fermion environment
- Quantum Sticking of Atoms on Membranes
- Theory of Phonon-Assisted Adsorption in Graphene: Many-Body Infrared Dynamics
- Infrared problem in quantum acoustodynamics at finite temperature
- Infrared Dynamics of Cold Atoms on Hot Graphene Membranes
- Infrared Problem in Quantum Acoustodynamics
- Radiative Corrections to Quantum Sticking on Graphene
- Infrared Problem in Cold Atom Quantum Physisorption on 2D Materials
- Variational approach to atom-membrane dynamics
- Quantum and thermal fluctuations of a thin elastic plate
- Comment on "Theory of phonon-assisted adsorption in graphene: Many-body infrared dynamics''