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Dive into the research topics where Kaitlin Moore is active.

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Featured researches published by Kaitlin Moore.


Nature Communications | 2015

Forbidden atomic transitions driven by an intensity-modulated laser trap

Kaitlin Moore; Sarah E. Anderson; Georg Raithel

Spectroscopy is an essential tool in understanding and manipulating quantum systems, such as atoms and molecules. The model describing spectroscopy includes the multipole-field interaction, which leads to established spectroscopic selection rules, and an interaction that is quadratic in the field, which is not often employed. However, spectroscopy using the quadratic (ponderomotive) interaction promises two significant advantages over spectroscopy using the multipole-field interaction: flexible transition rules and vastly improved spatial addressability of the quantum system. Here we demonstrate ponderomotive spectroscopy by using optical-lattice-trapped Rydberg atoms, pulsating the lattice light and driving a microwave atomic transition that would otherwise be forbidden by established spectroscopic selection rules. This ability to measure frequencies of previously inaccessible transitions makes possible improved determinations of atomic characteristics and constants underlying physics. The spatial resolution of ponderomotive spectroscopy is orders of magnitude better than the transition frequency would suggest, promising single-site addressability in dense particle arrays for quantum computing applications.


Physical Review Letters | 2015

Probe of Rydberg-Atom Transitions via an Amplitude-Modulated Optical Standing Wave with a Ponderomotive Interaction.

Kaitlin Moore; Georg Raithel

In ponderomotive spectroscopy an amplitude-modulated optical standing wave is employed to probe Rydberg-atom transitions, utilizing a ponderomotive rather than a dipole-field interaction. Here, we engage nonlinearities in the modulation to drive dipole-forbidden transitions up to the fifth order. We reach transition frequencies approaching the sub-THz regime. We also demonstrate magic-wavelength conditions, which result in symmetric spectral lines with a Fourier-limited peak at the line center. Applicability to precision measurement is discussed.


Frontiers in Optics 2012/Laser Science XXVIII (2012), paper LW1I.4 | 2012

Precision Time Measurement and a Novel Two-Photon Clock Scheme

Emily Alden; Aaron E. Leanhardt; Kaitlin Moore

We propose a novel two-photon excitation scheme for the 1S0 → 3P0 optical clock transition that works in the absence of hyperfine structure and applied magnetic fields. Experimental progress in Hg is discussed.


Physical Review A | 2017

Measuring the Rydberg constant using circular Rydberg atoms in an intensity-modulated optical lattice

Andira Ramos; Kaitlin Moore; Georg Raithel


Physical Review A | 2014

Two-photonE1-M1optical clock

E. A. Alden; Kaitlin Moore; Aaron E. Leanhardt


Bulletin of the American Physical Society | 2018

Atom-based RF field measurement using all-infrared laser fields

Eric L. Peterson; Nithiwadee Thaicharoen; Kaitlin Moore; David F. Anderson; Robert Powel; Georg Raithel


Bulletin of the American Physical Society | 2017

Progress towards measuring the Rydberg constant with circular Rydberg atoms

Andira Ramos; Kaitlin Moore; Georg Raithel


Bulletin of the American Physical Society | 2017

Blackbody effects in high-precision microwave spectroscopy with circular Rydberg atoms

Stephen DiIorio; Andira Ramos; Kaitlin Moore; Georg Raithel


Bulletin of the American Physical Society | 2017

Quantized motion of Rydberg atoms in an amplitude-modulated lattice potential

Vladimir S. Malinovsky; Kaitlin Moore; Andira Ramos; Georg Georg


Bulletin of the American Physical Society | 2016

Progress toward measuring the

Kaitlin Moore; Georg Raithel

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Aaron E. Leanhardt

Massachusetts Institute of Technology

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Emily Alden

University of Michigan

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David F. Anderson

University of Wisconsin-Madison

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Eric L. Peterson

California Institute of Technology

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