dc.contributor.author |
Carey, Benjamin |
en_US |
dc.contributor.author |
ARORA, ASHISH et al. |
en_US |
dc.date.accessioned |
2022-10-28T09:11:50Z |
|
dc.date.available |
2022-10-28T09:11:50Z |
|
dc.date.issued |
2022-11 |
en_US |
dc.identifier.citation |
Small Methods, 6(11), 2200885. |
en_US |
dc.identifier.issn |
2366-9608 |
en_US |
dc.identifier.uri |
https://doi.org/10.1002/smtd.202200885 |
en_US |
dc.identifier.uri |
http://dr.iiserpune.ac.in:8080/xmlui/handle/123456789/7424 |
|
dc.description.abstract |
A Faraday rotation spectroscopy (FRS) technique is presented for measurements on the micrometer scale. Spectral acquisition speeds of about two orders of magnitude faster than state-of-the-art modulation spectroscopy setups are demonstrated. The experimental method is based on charge-coupled-device detection, avoiding speed-limiting components, such as polarization modulators with lock-in amplifiers. At the same time, FRS spectra are obtained with a sensitivity of 20 µrad (\[0.001{\bm{^\circ }}\]) over a broad spectral range (525–800 nm), which is on par with state-of-the-art polarization-modulation techniques. The new measurement and analysis technique also automatically cancels unwanted Faraday rotation backgrounds. Using the setup, Faraday rotation spectroscopy of excitons is performed in a hexagonal boron nitride-encapsulated atomically thin semiconductor WS2 under magnetic fields of up to 1.4 T at room temperature and liquid helium temperature. An exciton g-factor of −4.4 ± 0.3 is determined at room temperature, and −4.2 ± 0.2 at liquid helium temperature. In addition, FRS and hysteresis loop measurements are performed on a 20 nm thick film of an amorphous magnetic Tb20Fe80 alloy. |
en_US |
dc.language.iso |
en |
en_US |
dc.publisher |
Wiley |
en_US |
dc.subject |
Beam displacer |
en_US |
dc.subject |
CCD |
en_US |
dc.subject |
Excitons |
en_US |
dc.subject |
Faraday rotation |
en_US |
dc.subject |
Transition metal dichalcogenides |
en_US |
dc.subject |
WS2 |
en_US |
dc.subject |
2022-OCT-WEEK3 |
en_US |
dc.subject |
TOC-OCT-2022 |
en_US |
dc.subject |
2022 |
en_US |
dc.title |
High-Performance Broadband Faraday Rotation Spectroscopy of 2D Materials and Thin Magnetic Films |
en_US |
dc.type |
Article |
en_US |
dc.contributor.department |
Dept. of Physics |
en_US |
dc.identifier.sourcetitle |
Small Methods |
en_US |
dc.publication.originofpublisher |
Foreign |
en_US |