We present theoretical and experimental results of L\'evy flights of light originating from a random walk of photons in a hot atomic vapor. In contrast to systems with quenched disorder, this system does not present any correlations between the position and the step length of the random walk. In an analytical model based on microscopic first principles including Doppler broadening we find anomalous L\'evy-type superdiffusion corresponding to a single-step size distribution P(x)∝x^-(1+α), with α≈1. We show that this step size distribution leads to a violation of Ohm's law [Tdiff∝L^-α/2≠L^-1], as expected for a L\'evy walk of independent steps. Furthermore, the spatial profile of the transmitted light develops power-law tails [Tdiff(r)∝r^-3-α]. In an experiment using a slab geometry with hot Rb vapor, we measured the total diffuse transmission Tdiff and the spatial profile of the transmitted light Tdiff(r). We obtained the microscopic L\'evy parameter α under macroscopic multiple scattering conditions paving the way to investigation of L\'evy flights in different atomic physics and astrophysics systems.
No takes yet. Share an insight, caveat, or question.
Baudouin et al. (2014) studied this question.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: