Electron-Enabled Nanoparticle Diffraction

Fuente: arXiv
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Main Authors: Nimmrichter, Stefan, Rätzel, Dennis, Bicket, Isobel C., Seifner, Michael S., Haslinger, Philipp
Format: Preprint
Published: 2025
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author Nimmrichter, Stefan
Rätzel, Dennis
Bicket, Isobel C.
Seifner, Michael S.
Haslinger, Philipp
author_facet Nimmrichter, Stefan
Rätzel, Dennis
Bicket, Isobel C.
Seifner, Michael S.
Haslinger, Philipp
contents We propose a scheme for generating high-mass quantum superposition states of an optically pre-cooled, levitated nanoparticle through electron diffraction at its sub-nanometer crystal lattice. When a single electron undergoes Bragg diffraction at a free-falling nanoparticle, momentum conservation implies that the superposition of Bragg momenta is imprinted onto the relative coordinate between electron and nanoparticle, which entangles their wavefunctions. By imaging the electron interferogram, one maps the nanoparticle state onto a superposition of Bragg momenta, as if it was diffracted by its own lattice. This results in a coherent momentum splitting approximately 1000 times greater than what is achievable with two-photon recoils in conventional standing-wave gratings. Self-interference of the nanoparticle can thus be observed within drastically shorter free-fall times in a time-domain Talbot interferometer configuration, significantly relaxing source requirements and alleviating decoherence from environmental factors such as residual gas and thermal radiation. Shorter interference times also allow for a recapture of the nanoparticle within its initial trapping volume, facilitating its reuse in many rapid experimental duty cycles. This opens new possibilities for experimental tests of macroscopic quantum effects within a transmission electron microscope.
format Preprint
id arxiv_https___arxiv_org_abs_2502_13821
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Electron-Enabled Nanoparticle Diffraction
Nimmrichter, Stefan
Rätzel, Dennis
Bicket, Isobel C.
Seifner, Michael S.
Haslinger, Philipp
Quantum Physics
We propose a scheme for generating high-mass quantum superposition states of an optically pre-cooled, levitated nanoparticle through electron diffraction at its sub-nanometer crystal lattice. When a single electron undergoes Bragg diffraction at a free-falling nanoparticle, momentum conservation implies that the superposition of Bragg momenta is imprinted onto the relative coordinate between electron and nanoparticle, which entangles their wavefunctions. By imaging the electron interferogram, one maps the nanoparticle state onto a superposition of Bragg momenta, as if it was diffracted by its own lattice. This results in a coherent momentum splitting approximately 1000 times greater than what is achievable with two-photon recoils in conventional standing-wave gratings. Self-interference of the nanoparticle can thus be observed within drastically shorter free-fall times in a time-domain Talbot interferometer configuration, significantly relaxing source requirements and alleviating decoherence from environmental factors such as residual gas and thermal radiation. Shorter interference times also allow for a recapture of the nanoparticle within its initial trapping volume, facilitating its reuse in many rapid experimental duty cycles. This opens new possibilities for experimental tests of macroscopic quantum effects within a transmission electron microscope.
title Electron-Enabled Nanoparticle Diffraction
topic Quantum Physics
url https://arxiv.org/abs/2502.13821