English

Inverse solving the Schr\"odinger equation for precision alignment of a microcavity

Optics 2024-04-12 v1 Quantum Physics

Abstract

In paraxial approximation, the electromagnetic eigenmodes inside an optical microresonator can be derived from a Schr\"odinger-type eigenvalue problem. In this framework, tilting the cavity mirrors effectively introduces a linear potential to the system. In our work, we apply solution strategies for inverse problems to precisely determine and control the relative orientation of two mirrors forming an optical microcavity. Our approach employs the inversion of the Schr\"odinger equation to reconstruct the effective potential landscape, and thus mirror tilts, from observed mode patterns. We investigate regularization techniques to address the ill-posed nature of inverse problems and to improve the stability of solutions. Our method consistently achieves an angle resolution of order 100 nanoradians per measurement.

Keywords

Cite

@article{arxiv.2404.07760,
  title  = {Inverse solving the Schr\"odinger equation for precision alignment of a microcavity},
  author = {Charlie Mattschas and Marius Puplauskis and Chris Toebes and Violetta Sharoglazova and Jan Klaers},
  journal= {arXiv preprint arXiv:2404.07760},
  year   = {2024}
}