A High-Flux and High-Efficiency Setup for Magneto-Infrared Spectroscopy

Fuente: arXiv
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Autori principali: Shi, Zeping, Wu, Wenbin, Zhang, Zhiwei, Du, Yuhan, Xu, Chenyao, Wang, Guangyi, Zhou, Mingsen, Hao, Congming, Meng, Xianghao, Jiang, Xiangyu, Pan, Chunhui, Lu, Wei, Shen, Hao, Pan, Haifeng, Sun, Zhenrong, Chu, Junhao, Yuan, Xiang
Natura: Preprint
Pubblicazione: 2025
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author Shi, Zeping
Wu, Wenbin
Zhang, Zhiwei
Du, Yuhan
Xu, Chenyao
Wang, Guangyi
Zhou, Mingsen
Hao, Congming
Meng, Xianghao
Jiang, Xiangyu
Pan, Chunhui
Lu, Wei
Shen, Hao
Pan, Haifeng
Sun, Zhenrong
Chu, Junhao
Yuan, Xiang
author_facet Shi, Zeping
Wu, Wenbin
Zhang, Zhiwei
Du, Yuhan
Xu, Chenyao
Wang, Guangyi
Zhou, Mingsen
Hao, Congming
Meng, Xianghao
Jiang, Xiangyu
Pan, Chunhui
Lu, Wei
Shen, Hao
Pan, Haifeng
Sun, Zhenrong
Chu, Junhao
Yuan, Xiang
contents We report the design and implementation of a high-flux, high-efficiency magneto-infrared spectroscopy system optimized for broadband measurements in high magnetic fields. The setup integrates a Fourier transform infrared spectrometer, a 12 T cryogen-free superconducting magnet, precision-polished and gold-plated light tubes, custom-designed reflective focusing modules for Faraday and Voigt geometries, and an external multi-detector chamber with motorized selection. Optical throughput is maximized by reducing light tube loss from 65.5%/m to 22.0%/m via abrasive flow and mechanical polishing followed by gold electroplating, and by adopting a single-on-axis parabolic-mirror Faraday module that increases the effective numerical aperture from 0.14 to 0.36, enhancing collection efficiency by nearly an order of magnitude. An eight-position motorized sample stage and fully automated control over magnetic field, temperature, optical path, and detector choice enable high-throughput measurements without repeated warm-ups. The optimized configuration achieves a root-mean-square noise level of 0.0061% in a 2-minute integration for a 40% reflectivity sample, corresponding to a signal-to-noise ratio exceeding 16000. System capabilities are demonstrated by resolving weak replica bands in EuCd2As2 and faint Landau level transitions in LaAlSi.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15642
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A High-Flux and High-Efficiency Setup for Magneto-Infrared Spectroscopy
Shi, Zeping
Wu, Wenbin
Zhang, Zhiwei
Du, Yuhan
Xu, Chenyao
Wang, Guangyi
Zhou, Mingsen
Hao, Congming
Meng, Xianghao
Jiang, Xiangyu
Pan, Chunhui
Lu, Wei
Shen, Hao
Pan, Haifeng
Sun, Zhenrong
Chu, Junhao
Yuan, Xiang
Materials Science
Strongly Correlated Electrons
Instrumentation and Detectors
We report the design and implementation of a high-flux, high-efficiency magneto-infrared spectroscopy system optimized for broadband measurements in high magnetic fields. The setup integrates a Fourier transform infrared spectrometer, a 12 T cryogen-free superconducting magnet, precision-polished and gold-plated light tubes, custom-designed reflective focusing modules for Faraday and Voigt geometries, and an external multi-detector chamber with motorized selection. Optical throughput is maximized by reducing light tube loss from 65.5%/m to 22.0%/m via abrasive flow and mechanical polishing followed by gold electroplating, and by adopting a single-on-axis parabolic-mirror Faraday module that increases the effective numerical aperture from 0.14 to 0.36, enhancing collection efficiency by nearly an order of magnitude. An eight-position motorized sample stage and fully automated control over magnetic field, temperature, optical path, and detector choice enable high-throughput measurements without repeated warm-ups. The optimized configuration achieves a root-mean-square noise level of 0.0061% in a 2-minute integration for a 40% reflectivity sample, corresponding to a signal-to-noise ratio exceeding 16000. System capabilities are demonstrated by resolving weak replica bands in EuCd2As2 and faint Landau level transitions in LaAlSi.
title A High-Flux and High-Efficiency Setup for Magneto-Infrared Spectroscopy
topic Materials Science
Strongly Correlated Electrons
Instrumentation and Detectors
url https://arxiv.org/abs/2512.15642