Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/106804
Title: Coexistence of ferromagnetism and charge density waves in monolayer LaBr₂
Authors: Zhou, J
Wang, Z
Wang, S
Feng, YP
Yang, M 
Shen, L
Issue Date: Aug-2023
Source: Nanoscale horizons, 1 Aug. 2023, v. 8, no. 8, p. 1054-1061
Abstract: Charge density waves (CDWs), a common phenomenon of periodic lattice distortions, often suppress ferromagnetism in two-dimensional (2D) materials, hindering their magnetic applications. Here, we report a novel CDW that generates 2D ferromagnetism instead of suppressing it, through the formation of interstitial anionic electrons as the charge modulation mechanism. Via first-principles calculations and a low-energy effective model, we find that the highly symmetrical monolayer LaBr2 undergoes a 2 × 1 CDW transition to a magnetic semiconducting T′ phase. Concurrently, the delocalized 5d1 electrons of La in LaBr2 redistribute and accumulate within the interstitial space in the T′ phase, forming anionic electrons, also known as 2D electride or electrene. The strongly localized nature of anionic electrons promotes a Mott insulating state and full spin-polarization, while the overlap of their extended tails yields ferromagnetic direct exchange between them. Such transition introduces a new magnetic form of CDWs, offering promising opportunities for exploring novel fundamental physics and advanced spintronics applications.
Publisher: Royal Society of Chemistry
Journal: Nanoscale horizons 
ISSN: 2055-6756
EISSN: 2055-6764
DOI: 10.1039/d3nh00150d
Appears in Collections:Journal/Magazine Article

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