Highly Anisotropic Excitons and Multiple Phonon Bound States in a Van der Waals Antiferromagnetic Insulator
Kyle Hwangbo, Qi Zhang, Qianni Jiang, Yong Wang, Jordan Fonseca, Chong, Wang, Geoffrey M. Diederich, Daniel R. Gamelin, Di Xiao, Jiun-Haw Chu, Wang, Yao, Xiaodong Xu

TL;DR
This paper reports the observation of highly anisotropic excitons and multiple phonon bound states in the layered antiferromagnetic insulator NiPS3, revealing strong magnetic and optical anisotropies linked to magnetic order and electron-lattice interactions.
Contribution
It introduces NiPS3 as a new 2D platform for studying magneto-exciton physics and strong electron-lattice interactions in layered antiferromagnetic materials.
Findings
Excitons exhibit narrow linewidths (~350 ueV) and near unity linear polarization.
Strong linear dichroism is observed, locked to the zigzag magnetic axis.
Over ten exciton-phonon bound states are identified near the exciton resonance.
Abstract
Two-dimensional semiconducting systems, such as quantum wells and transition metal dichalcogenides, are the foundations to investigate low dimensional light-matter interactions. To date, the study of elementary photoexcitation, namely the exciton, in 2D semiconductors with intrinsic magnetic order remains a challenge due to the lack of suitable material platforms. Here, we report an observation of excitons coupled to zigzag antiferromagnetic order in the layered antiferromagnetic insulator NiPS3 using both photoluminescence (PL) and optical reflection spectroscopy. The exciton exhibits a linewidth as narrow as ~350 ueV with near unity linear polarization in the PL spectrum. As the thicknesses of samples is reduced from five layers to bilayers, the PL intensity is drastically suppressed and eventually vanishes in monolayers, consistent with the calculated bandgap being highly indirect…
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