Dirac magnons in honeycomb ferromagnets
Sergey S. Pershoguba,Saikat Banerjee,Saikat Banerjee,Jason C. Lashley,Jihwey Park,Hans Ågren,Gabriel Aeppli,Gabriel Aeppli,Alexander V. Balatsky,Alexander V. Balatsky,Alexander V. Balatsky +10 more
TL;DR: In this paper, the authors consider a specific case of ferromagnets consisting of the Van der Waals-bonded stacks of honeycomb layers, e.g. chromium trihalides CrX3 (X = F, Cl, Br and I), that display two spin wave modes with energy dispersion similar to that for the electrons in graphene.
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Abstract: The discovery of the Dirac electron dispersion in graphene led to the question of the Dirac cone stability with respect to interactions. Coulomb interactions between electrons were shown to induce a logarithmic renormalization of the Dirac dispersion. With a rapid expansion of the list of compounds and quasiparticle bands with linear band touching, the concept of bosonic Dirac materials has emerged. We consider a specific case of ferromagnets consisting of the Van der Waals-bonded stacks of honeycomb layers, e.g chromium trihalides CrX3 (X = F, Cl, Br and I), that display two spin wave modes with energy dispersion similar to that for the electrons in graphene. At the single particle level, these materials resemble their fermionic counterparts. However, how different particle statistics and interactions affect the stability of Dirac cones has yet to be determined. To address the role of interacting Dirac magnons, we expand the theory of ferromagnets beyond the standard Dyson theory to a case of non-Bravais honeycomb layers. We demonstrate that magnon-magnon interactions lead to a significant momentum-dependent renormalization of the bare band structure in addition to strongly momentum-dependent magnon lifetimes. We show that our theory qualitatively accounts for hitherto unexplained anomalies in a nearly half century old magnetic neutron scattering data for CrBr3. We also show that honeycomb ferromagnets display dispersive surface and edge states, unlike their electronic analogs.
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Citations
Probing magnetism in 2D van der Waals crystalline insulators via electron tunneling
Dahlia R. Klein,David MacNeill,Jose L. Lado,David Soriano,Efrén Navarro-Moratalla,Kenji Watanabe,Takashi Taniguchi,Soham Manni,Soham Manni,Soham Manni,Paul C. Canfield,Paul C. Canfield,Joaquín Fernández-Rossier,Pablo Jarillo-Herrero +13 more
TL;DR: In this paper, the authors report tunneling through the layered magnetic insulator CrI3 as a function of temperature and applied magnetic field and electrically detect the magnetic ground state and interlayer coupling and observe a field-induced metamagnetic transition.
Probing and controlling magnetic states in 2D layered magnetic materials
Kin Fai Mak,Jie Shan,Daniel C. Ralph +2 more
- 01 Nov 2019
TL;DR: In this article, the authors survey the physical properties of the large class of layered magnetic materials, and discuss recent advances in the study of these materials in the 2D limit, including optical and electrical techniques used for probing 2D magnetic materials and mechanisms for reorienting and/or switching 2D magnets by electric fields.
426
Direct Photoluminescence Probing of Ferromagnetism in Monolayer Two-Dimensional CrBr3
TL;DR: The intrinsic ferromagnetism in atomically thin monolayer CrBr3 is reported, directly probed by polarization resolved magneto-photoluminescence and attribute the layer-number-dependent hysteresis loops in thick layers to the magnetic domain structures.
Topological Spin Excitations in Honeycomb Ferromagnet CrI 3
Lebing Chen,Jae Ho Chung,Jae Ho Chung,Bin Gao,Tong Chen,Matthew B. Stone,Alexander I. Kolesnikov,Qingzhen Huang,Pengcheng Dai +8 more
TL;DR: In this paper, two bands of excitation for spin waves in the insulating honeycomb ferromagnet CrI${}_{3} showed promise for potential spintronic applications.
The Magnetic Genome of Two-Dimensional van der Waals Materials
Qing Hua Wang,Amilcar Bedoya-Pinto,Mark Blei,Avalon H. Dismukes,Assaf Hamo,Sarah N. M. Jenkins,Maciej Koperski,Yu Liu,Qi-Chao Sun,Evan J. Telford,Hyun Ho Kim,Mathias Augustin,Uri Vool,Jiaxin Yin,Lu Hua Li,Alexey Falin,Cory Dean,Fèlix Casanova,Richard Evans,Mairbek Chshiev,Artem Mishchenko,Cedomir Petrovic,Rui He,Liu-Bin Zhao,Adam W. Tsen,Brian D. Gerardot,Mauro Brotons-Gisbert,Zurab Guguchia,Xavier Roy,Sefaattin Tongay,Ziwei Wang,M. Z. Hasan,Joerg Wrachtrup,Amir Yacoby,Albert Fert,Stuart S. P. Parkin,Kostya S. Novoselov,Pengcheng Dai,Luis Balicas,Elton J. G. Santos +39 more
TL;DR: A comprehensive review of 2D magnetism can be found in this paper , where prominent authors with expertise in complementary fields of magnetism (i.e., synthesis, device engineering, magneto-optics, imaging, transport, mechanics, spin excitations, and theory and simulations) have joined together to provide a genome of current knowledge and a guideline for future developments in 2D magnetic materials research.
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