New near-analytical path to the threshold size of spherical random lasing via geometric-distribution-probability weighting of the diffusive photon fluence rate
Daqing Piao

TL;DR
This paper introduces a novel near-analytical method using geometric-distribution-probability weighting to estimate the threshold size for random lasing in a scattering sphere, improving predictions across diffusive and semi-ballistic regimes.
Contribution
It presents a new approach based on GDP-weighted diffusion analysis to predict the lasing threshold size more accurately than existing eigen-mode methods.
Findings
The GDP-weighted integral reveals a bi-phasic temporal pattern in photon fluence.
The threshold condition is linked to the line-of-sight length equaling the sphere radius.
The method outperforms eigen-mode decomposition in semi-ballistic regimes.
Abstract
We demonstrate a new near-analytical path to the threshold-size of random-lasing for the case of a uniform and isotropic-scattering sphere. We assess a geometric-distribution-probability (GDP) weighted integration of the diffusion-equation derived time-dependent photon fluence-rate at a spherical boundary, in response to uniform, synchronous, and Delta-functional photon generations within the sphere. The GDP weights the contribution of the modeled Delta-functional photon sources to the temporal behavior of the photon fluence rate at the spherical boundary-domain based on the line-of-sight distance between the modeled-photon source and the same field point. The integral manifests a bi-phasic pattern versus time with a global minimum followed by an exponential growth. The line-of-sight length that corresponds to the time of global minimum decreases monotonically as the size of the sphere…
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Taxonomy
TopicsRandom lasers and scattering media · Optical Imaging and Spectroscopy Techniques · Advanced Optical Sensing Technologies
