论文标题
用光在零轨道角动量抗fiferromagnet中控制磁力
Controlling magnetism with light in a zero orbital angular momentum antiferromagnet
论文作者
论文摘要
抗铁磁材料具有内在的超快自旋动力学,使其成为以THZ频率运行的未来宏伟设备的理想候选者。当前研究的重点是研究抗铁磁绝缘子中有效生成相干镁的光学方法。在具有轨道角动量的磁性晶格中,自旋轨道耦合可以通过对低能电偶极子的共振激发(例如声子和与旋转相互作用的轨道共振)的共振激发进行旋转动力学。但是,在轨道零角动量的磁系统中,缺乏相干自旋动力学的谐振和低能光学激发的微观途径。在这里,我们在实验上考虑了电子和振动激发的相对优点,用于零轨道角动量磁体的光学控制,重点是极限情况:甲状腺硫代硫代硫酸含量(MNPS3),由轨道型单元MN2+离子构成。我们研究了在其带隙内进行旋转与两种类型的激发的相关性:从MN2+的单线轨道基态到轨道三重态的结合电子轨道激发,这会导致连贯的自旋进液,以及引起热旋旋障碍的晶体场的振动激发。我们的发现将轨道转变施加了作为磁控制器中磁控制的关键目标,由零轨道角动量的磁心中心构成。
Antiferromagnetic materials feature intrinsic ultrafast spin dynamics, making them ideal candidates for future magnonic devices operating at THz frequencies. A major focus of current research is the investigation of optical methods for the efficient generation of coherent magnons in antiferromagnetic insulators. In magnetic lattices endowed with orbital angular momentum, spin-orbit coupling enables spin dynamics through the resonant excitation of low-energy electric dipoles such as phonons and orbital resonances which interact with spins. However, in magnetic systems with zero orbital angular momentum, microscopic pathways for the resonant and low-energy optical excitation of coherent spin dynamics are lacking. Here, we consider experimentally the relative merits of electronic and vibrational excitations for the optical control of zero orbital angular momentum magnets, focusing on a limit case: the antiferromagnet manganese thiophoshate (MnPS3), constituted by orbital singlet Mn2+ ions. We study the correlation of spins with two types of excitations within its band gap: a bound electron orbital excitation from the singlet orbital ground state of Mn2+ into an orbital triplet state, which causes coherent spin precession, and a vibrational excitation of the crystal field that causes thermal spin disorder. Our findings cast orbital transitions as key targets for magnetic control in insulators constituted by magnetic centers of zero orbital angular momentum.