Theory of Transverse Mode Instability in Fiber Amplifiers with Multimode Excitations
Kabish Wisal, Chun-Wei Chen, Hui Cao, A. Douglas Stone

TL;DR
This paper develops a semi-analytic frequency-domain theory to understand and predict the threshold for transverse mode instability (TMI) in multimode fiber amplifiers, showing that multimode excitation can significantly suppress TMI.
Contribution
The authors derive a general theory for TMI threshold in multimode fibers, revealing linear scaling with the number of excited modes and demonstrating TMI suppression due to short-range thermo-optical coupling effects.
Findings
TMI threshold increases linearly with the number of excited modes.
Multimode excitation can suppress TMI by reducing noise growth rates.
The linear scaling of TMI threshold is universal across different fiber geometries.
Abstract
Transverse Mode Instability (TMI) which results from dynamic nonlinear thermo-optical scattering is the primary limitation to power scaling in high-power fiber lasers and amplifiers. It has been proposed that TMI can be suppressed by exciting multiple modes in a highly multimode fiber. We derive a semi-analytic frequency-domain theory of the threshold for the onset of TMI under arbitrary multimode input excitation for general fiber geometries. We show that TMI results from exponential growth of noise in all the modes at downshifted frequencies due to the thermo-optical coupling. The noise growth rate in each mode is given by the sum of signal powers in various modes weighted by pairwise thermo-optical coupling coefficients. We calculate thermo-optical coupling coefficients for all pairs of modes in a standard circular multimode fiber and show that modes with large…
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Taxonomy
TopicsPhotonic Crystal and Fiber Optics · Advanced Fiber Laser Technologies · Laser-Matter Interactions and Applications
