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Exploiting Soliton Decay and Phase Fluctuations in Atom Chip Interferometry of Bose-Einstein Condensates

R. G. Scott, T. E. Judd, and T. M. Fromhold
Phys. Rev. Lett. 100, 100402 – Published 12 March 2008

Abstract

We show that the decay of a soliton into vortices provides a mechanism for measuring the initial phase difference between two merging Bose-Einstein condensates. At very low temperatures, the mechanism is resonant, operating only when the clouds start in antiphase. But at higher temperatures, phase fluctuations trigger vortex production over a wide range of initial relative phase, as observed in recent experiments at MIT. Choosing the merge time to maximize the number of vortices created makes the interferometer highly sensitive to spatially varying phase patterns and hence atomic movement.

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  • Received 19 October 2007

DOI:https://doi.org/10.1103/PhysRevLett.100.100402

©2008 American Physical Society

Authors & Affiliations

R. G. Scott, T. E. Judd, and T. M. Fromhold

  • School of Physics and Astronomy, University of Nottingham, Nottingham, NG7 2RD, United Kingdom

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Vol. 100, Iss. 10 — 14 March 2008

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Images

  • Figure 1
    Figure 1
    (a) Atom density profile of the two BECs in the y=0 plane (axes inset) at t=0. (b)–(g) Density profiles within the region enclosed by the dashed rectangle in (a) at key stages of the merging process (τ=5ms) calculated for Δ=0 at t=3ms (b), 4 ms (c), 5 ms (d), and for Δ=π at t=3ms (e), 4 ms (f), and 5 ms (g). Upper [lower] horizontal bars show scales in (a) [(b)–(g)].Reuse & Permissions
  • Figure 2
    Figure 2
    Atom density profiles within the region of the y=0 plane (axes inset) shown by the dashed rectangle in Fig. 1a, at t=τ=1ms for Δ=0 (a) and π (b), and at t=τ=50ms for Δ=0 (c) and π (d). Horizontal bar shows scale.Reuse & Permissions
  • Figure 3
    Figure 3
    Fourier power spectra F(kz) obtained from simulations without fluctuations at t=τ=5ms, for Δ=0 [solid curve in (a)], 0.8π [filled circles in (a)], and π [solid curve in (b)]. The vertical dotted lines indicate kz=±kc. (c) Nc/N versus Δ curves (t=τ=5ms) obtained from simulations without fluctuations (solid curve with crosses), including quantum fluctuations (dotted curve with circles), and including both quantum and thermal fluctuations at T=T1 (dashed curve with downward pointing triangles) and T2 (dot-dashed curve with upward pointing triangles).Reuse & Permissions
  • Figure 4
    Figure 4
    Atom density profiles in the y=0 plane (axes inset) showing interference between the two BECs after 8 ms time of flight with Δ=0 at T=T1 (a) and T2 (b). Vertical bar shows scale.Reuse & Permissions
  • Figure 5
    Figure 5
    Atom density profiles in the y=0 plane (axes inset) of merged BECs (t=τ=5ms) calculated, without fluctuations, for Δ=4×104z (a) and Δ=0.05πsin(104πz)+π (b). Large dashed rectangles contain enlargements of density profiles within smaller rectangles. Horizontal bar shows scale.Reuse & Permissions
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