Nanoscale magnetism probed in a matter-wave interferometer
arXiv:2203.11866 · doi:10.1103/PhysRevLett.129.123001
Abstract
We explore a wide range of fundamental magnetic phenomena by measuring the dephasing of matter-wave interference fringes upon application of a variable magnetic gradient. The versatility of our interferometric Stern-Gerlach technique enables us to study alkali atoms, organic radicals and fullerenes in the same device, with magnetic moments ranging from a Bohr magneton to less than a nuclear magneton. We find evidence for magnetization of a supersonic beam of organic radicals and, most notably, observe a strong magnetic response of a thermal C beam consistent with high-temperature atom-like deflection of rotational magnetic moments.
References in corpus (3)
Cited by in corpus (4)
- Stern-Gerlach deflection of cryogenically cold polyatomic molecules in superfluid nanodroplets
- Impact of molecular properties on diffraction at nanomasks with low charge density
- Diffracting molecular matter-waves at deep-ultraviolet standing-light waves
- Emergence of Classicality in Stern-Gerlach Experiment via Self-Gravity