P. St. J. Russell

An ion trap built with photonic crystal fibre technology

F. Lindenfelser [1], B. Keitch [1], D. Kienzler [1], D. Bykov [2], P. Uebel [2], M. A. Schmidt [3], P. St. J. Russell, J. P. Home [1]

Abstract

We demonstrate a surface-electrode ion trap fabricated using techniques transferred from the manufacture of photonic-crystal fibres. This provides a relatively straightforward route for realizing traps with an electrode structure on the 100 micron scale with high optical access. We demonstrate the basic functionality of the trap by cooling a single ion to the quantum ground state, allowing us to measure a heating rate from the ground state of 787(24) quanta/s. Variation of the fabrication procedure used here may provide access to traps in this geometry with trap scales between 100 um and 10 um.

Damage-free single-mode transmission of deep-UV light in hollow-core PCF

F. Gebert [1], M. H. Frosz [2], T. Weiss [2,3], Y. Wan [1], A. Ermolov [2], N. Y. Joly [2], P. O. Schmidt [1,2], P. St. J. Russell

Abstract

Transmission of UV light with high beam quality and pointing stability is desirable for many experiments in atomic, molecular and optical physics. In particular, laser cooling and coherent manipulation of trapped ions with transitions in the UV require stable, single-mode light delivery. Transmitting even ~2 mW CW light at 280 nm through silica solid-core fibers has previously been found to cause transmission degradation after just a few hours due to optical damage. We show that photonic crystal fiber of the kagomé type can be used for effectively single-mode transmission with acceptable loss and bending sensitivity. No transmission degradation was observed even after >100 hours of operation with 15 mW CW input power. In addition it is shown that implementation of the fiber in a trapped ion experiment significantly increases the coherence times of the internal state transfer due to an increase in beam pointing stability.