Alejandra Collopy
National Institute of Standards and Technology
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Publication
Featured researches published by Alejandra Collopy.
Physical Review Letters | 2013
Matthew T. Hummon; Mark Yeo; Benjamin Stuhl; Alejandra Collopy; Yong Xia; J. Ye
We demonstrate one- and two-dimensional transverse laser cooling and magneto-optical trapping of the polar molecule yttrium (II) oxide (YO). In a 1D magneto-optical trap (MOT), we characterize the magneto-optical trapping force and decrease the transverse temperature by an order of magnitude, from 25 to 2 mK, limited by interaction time. In a 2D MOT, we enhance the intensity of the YO beam and reduce the transverse temperature in both transverse directions. The approach demonstrated here can be applied to many molecular species and can also be extended to 3D.
Physical Review Letters | 2017
ïc Anderegg; Benjamin Augenbraun; Eunmi Chae; Boerge Hemmerling; Nicholas Hutzler; Aakash Ravi; Alejandra Collopy; J. Ye; Wolfgang Ketterle; John M. Doyle
We demonstrate significantly improved magneto-optical trapping of molecules using a very slow cryogenic beam source and either rf modulated or dc magnetic fields. The rf magneto-optical trap (MOT) confines 1.0(3)×10^{5} CaF molecules at a density of 7(3)×10^{6} cm^{-3}, which is an order of magnitude greater than previous molecular MOTs. Near Doppler-limited temperatures of 340(20) μK are attained. The achieved density enables future work to directly load optical tweezers and create optical arrays for quantum simulation.
Physical Review Letters | 2015
Mark Yeo; Matthew T. Hummon; Alejandra Collopy; Bo Yan; Boerge Hemmerling; Eunmi Chae; John M. Doyle; J. Ye
We demonstrate the mixing of rotational states in the ground electronic state using microwave radiation to enhance optical cycling in the molecule yttrium (II) monoxide (YO). This mixing technique is used in conjunction with a frequency modulated and chirped continuous wave laser to slow longitudinally a cryogenic buffer-gas beam of YO. We generate a flux of YO below 10 m/s, directly loadable into a three-dimensional magneto-optical trap. This technique opens the door for laser cooling of diatomic molecules with more complex loss channels due to intermediate states.
Journal of Physics B | 2016
Boerge Hemmerling; Eunmi Chae; Aakash Ravi; Loic Anderegg; Garrett Drayna; Nicholas Hutzler; Alejandra Collopy; J. Ye; Wolfgang Ketterle; John M. Doyle
New Journal of Physics | 2015
Alejandra Collopy; Matthew T. Hummon; Mark Yeo; Bo Yan; J. Ye
arXiv: Atomic Physics | 2018
Alejandra Collopy; Shiqian Ding; Yewei Wu; Ian Finneran; Loic Anderegg; Benjamin Augenbraun; John M. Doyle; J. Ye
Bulletin of the American Physical Society | 2018
Yewei Wu; Alejandra Collopy; Shiqian Ding; Ian Finneran; Loic Anderegg; Benjamin Augenbraun; John M. Doyle; J. Ye
IOP Publishing | 2017
Eunmi Chae; Loic Anderegg; Benjamin Augenbraun; Aakash Ravi; Boerge Hemmerling; Alejandra Collopy; J. Ye; Nicholas Hutzler; Wolfgang Ketterle; John M. Doyle
Bulletin of the American Physical Society | 2017
Eunmi Chae; Loic Anderegg; Benjamin Augenbraun; Aakash Ravi; Boerge Hemmerling; Nicholas Hutzler; Alejandra Collopy; J. Ye; Wolfgang Ketterle; John M. Doyle
Bulletin of the American Physical Society | 2016
Aakash Ravi; Eunmi Chae; Boerge Hemmerling; Loic Anderegg; Benjamin Augenbraun; Garrett Drayna; Nicholas Hutzler; Alejandra Collopy; Yewei Wu; Shiqian Ding; J. Ye; Wolfgang Ketterle; John M. Doyle