M. J. Petrasiunas

Millikelvin Spatial Thermometry of Trapped Ions

B. G. Norton, E. W. Streed, M. J. Petrasiunas, A. Jechow [1], D. Kielpinski [1]

Abstract

We demonstrate millikelvin thermometry of laser cooled trapped ions with high-resolution imaging. This equilibrium approach is independent of the cooling dynamics and has lower systematic error than Doppler thermometry, with \pm5 mK accuracy and \pm1 mK precision. We used it to observe highly anisotropic dynamics of a single ion, finding temperatures of < 60 mK and > 15 K simultaneously along different directions. This thermometry technique can offer new insights into quantum systems sympathetically cooled by ions, including atoms, molecules, nanomechanical oscillators, and electric circuits.

Wavelength-Scale Imaging of Trapped Ions using a Phase Fresnel lens

A. Jechow [1], E. W. Streed [1], B. G. Norton [1], M. J. Petrasiunas [1], D. Kielpinski [1]

Abstract

A microfabricated phase Fresnel lens was used to image ytterbium ions trapped in a radio frequency Paul trap. The ions were laser cooled close to the Doppler limit on the 369.5 nm transition, reducing the ion motion so that each ion formed a near point source. By detecting the ion fluorescence on the same transition, near diffraction limited imaging with spot sizes of below 440 nm (FWHM) was achieved. This is the first demonstration of imaging trapped ions with a resolution on the order of the transition wavelength.