Improved control of the motional and internal quantum states of ultracold neutral atoms and ions has opened intriguing possibilities for quantum simulation and quantum computation. Many-body effects have been explored with hundreds of thousands of quantum-degenerate neutral atoms(1), and coherent light-matter interfaces have been built(2,3). Systems of single or a few trapped ions have been used to demonstrate universal quantum computing algorithms(4) and to search for variations of fundamental constants in precision atomic clocks(5). Until now, atomic quantum gases and single trapped ions have been treated separately in experiments. Here we investigate whether they can be advantageously combined into one hybrid system, by exploring the immersion of a single trapped ion into a Bose-Einstein condensate of neutral atoms. We demonstrate independent control over the two components of the hybrid system, study the fundamental interaction processes and observe sympathetic cooling of the single ion by the condensate. Our experiment calls for further research into the possibility of using this technique for the continuous cooling of quantum computers(6). We also anticipate that it will lead to explorations of entanglement in hybrid quantum systems and to fundamental studies of the decoherence of a single, locally controlled impurity particle coupled to a quantum environment(7,8).
A trapped single ion inside a Bose-Einstein condensate / Zipkes, C; Palzer, S; Sias, Carlo; Kohl, M.. - In: NATURE. - ISSN 0028-0836. - 464:7287(2010), p. 388. [10.1038/nature08865]
A trapped single ion inside a Bose-Einstein condensate
SIAS, CARLO;
2010
Abstract
Improved control of the motional and internal quantum states of ultracold neutral atoms and ions has opened intriguing possibilities for quantum simulation and quantum computation. Many-body effects have been explored with hundreds of thousands of quantum-degenerate neutral atoms(1), and coherent light-matter interfaces have been built(2,3). Systems of single or a few trapped ions have been used to demonstrate universal quantum computing algorithms(4) and to search for variations of fundamental constants in precision atomic clocks(5). Until now, atomic quantum gases and single trapped ions have been treated separately in experiments. Here we investigate whether they can be advantageously combined into one hybrid system, by exploring the immersion of a single trapped ion into a Bose-Einstein condensate of neutral atoms. We demonstrate independent control over the two components of the hybrid system, study the fundamental interaction processes and observe sympathetic cooling of the single ion by the condensate. Our experiment calls for further research into the possibility of using this technique for the continuous cooling of quantum computers(6). We also anticipate that it will lead to explorations of entanglement in hybrid quantum systems and to fundamental studies of the decoherence of a single, locally controlled impurity particle coupled to a quantum environment(7,8).I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.