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Implementation of a stable, high-power optical lattice for quantum gas microscopy

Quantum Gases 2019-03-27 v3 Atomic Physics Quantum Physics

Abstract

We describe the design and implementation of a stable high-power 1064 nm laser system to generate optical lattices for experiments with ultracold quantum gases. The system is based on a low-noise laser amplified by an array of four heavily modified, high-power fiber amplifiers. The beam intensity is stabilized and controlled with a nonlinear feedback loop. Using real-time monitoring of the resulting optical lattice, we find the stability of the lattice site positions to be well below the lattice spacing over the course of hours. The position of the harmonic trap produced by the Gaussian envelope of the lattice beams is stable to about one lattice spacing and the long-term (six-month) relative RMS stability of the lattice spacing itself is 0.5%.

Keywords

Cite

@article{arxiv.1806.08997,
  title  = {Implementation of a stable, high-power optical lattice for quantum gas microscopy},
  author = {A. Mazurenko and S. Blatt and F. Huber and M. F. Parsons and C. S. Chiu and G. Ji and D. Greif and M. Greiner},
  journal= {arXiv preprint arXiv:1806.08997},
  year   = {2019}
}

Comments

13 pages, 13 figures