We demonstrate a trap that confines polarizable particles around the antinode of a standing-wave microwave field. The trap relies only on the polarizability of the particles far from any resonances, so can trap a wide variety of atoms and molecules in a wide range of internal states, including the ground state. The trap has a volume of about 10 cm³, and a depth approaching 1K for many polar molecules. We measure the trap properties using ⁷Li atoms, showing that when the input microwave power is 610W, the atoms remain trapped with a 1/e lifetime of 1.76(12) s, oscillating with an axial frequency of 28.55(5) Hz and a radial frequency of 8.81(8) Hz. The trap could be loaded with slow molecules from a range of available sources, and is particul...
The challenge of building a scalable quantum processor requires consolidation of the conflicting req...
A compact platform for cold atoms opens a range of exciting possibilities for portable, robust, and ...
The ability to cool and slow atoms with light for subsequent trapping(1-3) allows investigations of ...
Abstract. We discuss the possibility of trapping polar molecules in the standing-wave electromagneti...
Trapping particles is a key starting point for a range of physics experiments. The ability to confin...
We duscuss a resonant microwave trap for neutral atoms. Because of the long spontaneous radiation ti...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2011.Cataloged from PDF ve...
A linear AC trap for polar molecules in high-field seeking states has been devised and implemented, ...
We consider how trapped molecules can be sympathetically cooled by ultracold atoms. As a prototypica...
Ultracold polar molecules offer strong electric dipole moments and rich internal structure, which ma...
Cold polar molecules provide unique opportunities to test fundamental physics and chemistry. Their p...
We demonstrate coherent microwave control of the rotational, hyperfine and Zeeman states of ultracol...
We model sympathetic cooling of ground-state CaF molecules by ultracold Li and Rb atoms. The molecul...
A general scheme for rotational cooling of diatomic heteronuclear molecules is proposed. It uses a s...
Achieving precise control over an array of ultracold molecules would provide a unique tool-set for c...
The challenge of building a scalable quantum processor requires consolidation of the conflicting req...
A compact platform for cold atoms opens a range of exciting possibilities for portable, robust, and ...
The ability to cool and slow atoms with light for subsequent trapping(1-3) allows investigations of ...
Abstract. We discuss the possibility of trapping polar molecules in the standing-wave electromagneti...
Trapping particles is a key starting point for a range of physics experiments. The ability to confin...
We duscuss a resonant microwave trap for neutral atoms. Because of the long spontaneous radiation ti...
Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Physics, 2011.Cataloged from PDF ve...
A linear AC trap for polar molecules in high-field seeking states has been devised and implemented, ...
We consider how trapped molecules can be sympathetically cooled by ultracold atoms. As a prototypica...
Ultracold polar molecules offer strong electric dipole moments and rich internal structure, which ma...
Cold polar molecules provide unique opportunities to test fundamental physics and chemistry. Their p...
We demonstrate coherent microwave control of the rotational, hyperfine and Zeeman states of ultracol...
We model sympathetic cooling of ground-state CaF molecules by ultracold Li and Rb atoms. The molecul...
A general scheme for rotational cooling of diatomic heteronuclear molecules is proposed. It uses a s...
Achieving precise control over an array of ultracold molecules would provide a unique tool-set for c...
The challenge of building a scalable quantum processor requires consolidation of the conflicting req...
A compact platform for cold atoms opens a range of exciting possibilities for portable, robust, and ...
The ability to cool and slow atoms with light for subsequent trapping(1-3) allows investigations of ...