Microtraps

Microtraps

Microtraps

Product catalog summary

Introduction

The document discusses advancements in optical trapping of atoms, focusing on the use of two-dimensional arrays of microtraps for applications in quantum-information processing and quantum simulation. The experiment conducted at Institut d’Optique Graduate School demonstrated successful trapping of cold 87Rb atoms using a spatial light modulator (SLM) and the HASO4 First wavefront sensor from Imagine Optic.

Experimental Setup

The setup involves a collimated trapping beam at 850 nm directed onto an SLM, which imprints a phase onto it. This beam is then focused using a high-numerical-aperture aspheric lens. Cold atoms are produced at 50 µK with a magneto-optical trap (MOT) and detected via fluorescence at 780 nm. The setup allows for the creation of 2D trap arrays with various geometries, up to 100 sites with 4-5 µm spacing. However, optical aberrations affect the quality of the microtraps, as indicated by a low Strehl ratio.

Improvement with HASO4 First

The HASO4 First wavefront sensor, based on Shack-Hartmann technology, measures wavefront distortions with high accuracy. By applying phase corrections on the SLM, the optical quality of the microtraps is significantly improved. The wavefront aberrations were reduced from 0.155 RMS to 0.019 RMS, and the Strehl ratio increased from 0.43 to 0.98.

Results and Measurements

Improvements were confirmed by measuring trap characteristics, showing a 50% increase in trap depth and a 30% increase in trapping frequency. The enhancements were validated through imaging and intensity profile comparisons.

Conclusion

The HASO4 First sensor provides a straightforward method for improving wavefront quality, enhancing the intensity distribution for atom trapping experiments.

Acknowledgements

Thanks are given to Thierry Lahaye and Henning Labuhn from the Laboratoire Charles Fabry for their contributions to the experiments.

Literature

The document references a study by F. Nogrette et al. on single-atom trapping in holographic 2D arrays, published in Physical Review X.

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Catalog excerpts

Microtraps-1

Enhancement of the Optical Quality of Microtraps for Single Atoms with HASO4 First Olga Nabirotchkine Imagine Optic, 18 rue Charles de Gaulle, 91400 Orsay, France [email protected] Introduction Over the past years, an interest in advanced optical trapping of atoms has arisen. From simple initial configurations such as crossed optical dipole traps, researchers’ needs have evolved towards more complex light fields such as two-dimensional arrays of microtraps. These configurations open appealing applications in quantum-information processing and quantum simulation for instance. In this report, we present the results of an experiment performed at Institut d’Optique Graduate School (CNRS, France), demonstrating the successful trapping of cold 87Rb atoms in reconfigurable 2D arrays of microtraps obtained with a spatial light modulator (SLM). The use of a HASO4 First, the wavefront sensor from Imagine Optic, proved to be essential to achieve high-quality optical microtraps. Enhancement of Optical Quality of Microtraps for Single Atoms with HASO4 First Application note imagine-optic.com July 2014 – Property of Imagine Optic

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Microtraps-2

imagine [^cpfcsc Experimental Setup Figure 1 shows the experimental setup used to generate an array of microtraps for single-atom trapping. To do so, a collimated trapping beam at 850 nm is sent on a SLM, which imprints a phase onto it. Then, this beam is focused in the focal plane of a high- numerical-aperture aspheric lens. A cloud of cold atoms is produced at 50 uK with a magneto-optical trap (MOT) to load the microtraps. The atoms are detected thanks to the measurement of their fluorescence at 780 nm. The trapping beam is transmitted via a second aspheric lens to a diagnostic CCD camera to...

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Microtraps-3

imagine [^cpfcsc Improvement of the trap arrays The HAS04 First is a wavefront sensor based on patented Shack-Hartmann technology, which performs absolute achromatic measurement of both phase and intensity independently, simultaneously and in real-time. The accuracy of the measurement is Figure 3 (a) shows the wavefront measured after the vacuum chamber, for a flat phase applied to the SLM. One sees that the SLM present in the setup can be used, in addition to the phase imprinting for the generation of trap arrays, to compensate for the aberrations measured with the HAS04 First. Figure 3 (b)...

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Microtraps-4

These improvements need to be confirmed at the level of the atoms by measuring the essential characteristics of the trap, i.e. its depth and its frequency. Figure 6 shows the results of such a measurement, giving an improvement of 50 % in the trap depth and 30% for the trapping frequency. Acknowledgements We would like to thank Thierry Lahaye and Henning Labuhn from the Laboratoire Charles Fabry of the Institut d’Optique Graduate School (Palaiseau, France) for allowing us to present the results of their experiments. Literature F. Nogrette, H. Labuhn, S. Ravets, D. Barredo, L. Béguin, A. Vernier,...

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