A mid-infrared Mueller ellipsometer with pseudo-achromatic optical elements
E. Garcia-Caurel (LPICM), A. Lizana (LPICM), G. Ndong (LPICM), B., Al-Bugami (LPICM), C. Bernon (LPICM), E. Al-Qahtani (LPICM), F. Rengnez, (LPICM), A. De Martino (LPICM)

TL;DR
This paper introduces a broadband mid-infrared Mueller ellipsometer with pseudo-achromatic optical elements, capable of accurate polarization measurements across 3 to 14 microns, using optimized design for minimal error propagation.
Contribution
The paper presents a novel Mueller ellipsometer design with pseudo-achromatic optical elements for broadband mid-infrared applications, enhancing measurement homogeneity and accuracy.
Findings
Achieves accurate Mueller matrix measurements from 3 to 14 microns.
Uses total internal reflection in Fresnel rhombs for quasi-achromatic retardation.
Demonstrates high precision and accuracy through example measurements.
Abstract
The purpose of this article is to present a new broadband Mueller ellipsometer designed to work in the mid-infrared range, from 3 to 14 microns. The Mueller ellipsometer, which can be mounted in reflection or in transmission configuration, consists of a polarization state generator (PSG), a sample holder, and a polarization state analyzer (PSA). The PSG consists in one linear polarizer and a retarder sequentially rotated to generate a set of four optimal polarization states. The retarder consists in a bi-prism made of two identical Fresnel rhombs disposed symmetrically and joined by optical contact, giving the ensemble a "V" shape. Retardation is induced by the four total internal reflections that the beam undergoes when it propagates through the bi-prism. Total internal reflection allows to generate a quasi-achromatic retardation. The PSA is identical to the PSG, but with its optical…
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