Probing Macroscopic Quantum Superpositions with Nanorotors
Abstract
Whether quantum physics is universally valid is an open question with far-reaching implications. Intense research is therefore invested into testing the quantum superposition principle with ever heavier and more complex objects. Here we propose a radically new, experimentally viable route towards studies at the quantum-to-classical borderline by probing the orientational quantum revivals of a nanoscale rigid rotor. The proposed interference experiment testifies a macroscopic superposition of all possible orientations. It requires no diffraction grating, uses only a single levitated particle, and works with moderate motional temperatures under realistic environmental conditions. The first exploitation of quantum rotations of a massive object opens the door to new tests of quantum physics with submicron particles and to quantum gyroscopic torque sensors, holding the potential to improve state-of-the art devices by many orders of magnitude.
Cite
@article{arxiv.1803.01778,
title = {Probing Macroscopic Quantum Superpositions with Nanorotors},
author = {Benjamin A. Stickler and Birthe Papendell and Stefan Kuhn and Björn Schrinski and James Millen and Markus Arndt and Klaus Hornberger},
journal= {arXiv preprint arXiv:1803.01778},
year = {2018}
}
Comments
15 pages, 4 figures