凝聚态物理
拉曼散射
准粒子
马格农
X射线拉曼散射
拉曼光谱
散射
物理
反铁磁性
声子
量子自旋液体
自旋波
铁磁性
自旋极化
量子力学
超导电性
电子
作者
Reshma Kumawat,Shubham Farswan,Simranjeet Kaur,S. Bhatia,Kaushik Sen
标识
DOI:10.1088/1361-648x/ad75db
摘要
Abstract Raman scattering is an excellent method for simultaneously determining the dynamics of lattice, spin, and charge degrees of freedom. Furthermore, polarization selection rules in Raman scattering enable momentum-resolved quasiparticle dynamics. In this review, we highlight the potential of Raman scattering in probing magnetic quasiparticles or excitations in various magnetic materials. We demonstrate how temperature-dependent Raman scattering data can confirm the existence of magnons in long-range ordered magnets and fractionalized excitations in Kitaev spin liquid candidates. To make this review easily understandable to novices, we provide background information on magnons and fractionalized excitations, and explain how they become visible in the Raman scattering process. We also show how to estimate magnetic exchange interactions from the data. For both types of magnetic materials, we discuss the impact of spin-phonon coupling on the lineshape of the phonon modes. In terms of materials, we present magnetic Raman scattering data of antiferromagnetic Sr 2 IrO 4 and La 2 CuO 4 , ferromagnetic CrI 3 monolayers, and Kitaev spin liquid candidates α-RuCl 3 and β-Li 2 IrO 3 . Overall, our review demonstrates the versatility of the Raman scattering technique in probing quasiparticles in magnetic quantum materials. The review aims to inform young experimental researchers about the potential of Raman scattering, thereby motivating them to use this technique in their research.
科研通智能强力驱动
Strongly Powered by AbleSci AI