Entanglement in Elastic Electron Scattering: Perturbation theory misses fundamental aspects of Bragg scattering
arXiv:2508.01383 · doi:10.1103/vvb9-rf35
Abstract
Elastic electron scattering is one of the primary means of investigating materials on the atomic scale. It is usually described in a one-particle approach (the probe electron's evolution in a perturbative static potential), whereas we are dealing here with a two-body interaction between the probe and the sample, both described by separate quantum states, inducing entanglement. In this work, we present a quantum treatment of elastic electron scattering. We find that the entanglement between probe and scatterer can have far-reaching consequences, particularly on coherence and image contrast. As a timely example, we discuss decoherence in Bragg scattering on nanoparticles. We find that conventional scattering theory is recovered in most cases. The situation changes dramatically for freely evolving nano particles as e.g. levitated motional ground states, an active field of research.
References in corpus (8)
- Motional Quantum Ground State of a Levitated Nanoparticle from Room Temperature
- Large Quantum Superpositions and Interference of Massive Nanometer-Sized Objects
- Quantum Decoherence
- Quantum control of a nanoparticle optically levitated in cryogenic free space
- Simultaneous ground-state cooling of two mechanical modes of a levitated nanoparticle
- Simultaneous cooling of all six degrees of freedom of an optically levitated nanoparticle by elliptic coherent scattering
- Quantum ground-state cooling of two librational modes of a nanorotor
- Quantum Central Limit Theorems, Emergence of Classicality and Time-dependent Differential Entropy