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Sensing Atomic Motion from the Zero Point to Room Temperature with Ultrafast Atom Interferometry.

Authors :
Johnson KG
Neyenhuis B
Mizrahi J
Wong-Campos JD
Monroe C
Source :
Physical review letters [Phys Rev Lett] 2015 Nov 20; Vol. 115 (21), pp. 213001. Date of Electronic Publication: 2015 Nov 16.
Publication Year :
2015

Abstract

We sense the motion of a trapped atomic ion using a sequence of state-dependent ultrafast momentum kicks. We use this atom interferometer to characterize a nearly pure quantum state with n=1 phonon and accurately measure thermal states ranging from near the zero-point energy to n[over ¯]~10^{4}, with the possibility of extending at least 100 times higher in energy. The complete energy range of this method spans from the ground state to far outside of the Lamb-Dicke regime, where atomic motion is greater than the optical wavelength. Apart from thermometry, these interferometric techniques are useful for characterizing ultrafast entangling gates between multiple trapped ions.

Details

Language :
English
ISSN :
1079-7114
Volume :
115
Issue :
21
Database :
MEDLINE
Journal :
Physical review letters
Publication Type :
Academic Journal
Accession number :
26636850
Full Text :
https://doi.org/10.1103/PhysRevLett.115.213001