Two numerically designed nanofiber dipole traps place 87Rb atoms at the second-order Bragg spacing d=λ for collectively enhanced coupling and coherent back-reflection.
Corrections to our results for optical nanofiber traps in Cesium
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abstract
Several errors in Refs. [1, 2] are corrected related to the optical trapping potentials for a state-insensitive, compensated nanofiber trap for the D2 transition of atomic Cesium. Section I corrects our basic formalism in Ref. [1] for calculating dipole-force potentials. Section II corrects erroneous values for a partial lifetime and a transition wavelength in Ref. [1]. Sections III and IV present corrected figures for various trapping configurations considered in Refs. [1] and [2], respectively.
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Nanofiber-based second-order atomic Bragg lattice for collectively enhanced coupling
Two numerically designed nanofiber dipole traps place 87Rb atoms at the second-order Bragg spacing d=λ for collectively enhanced coupling and coherent back-reflection.