论文标题
bi $ _2 $ se $ _3 $ crystal中的声子驱动的超快对称性降低
Phonon-driven ultrafast symmetry lowering in a Bi$_2$Se$_3$ crystal
论文作者
论文摘要
固体中原子相干的高振幅振动的选择性激发可以引起异国情调的非平衡状态,在这种非平衡状态下,电子,磁性和晶格自由度之间相互作用的特征会发生很大变化,并且基础对称性被破坏。在这里,我们使用强烈的单周期terahertz脉冲来连贯dipole-active $ e_u^1 $ bi $ _2 $ se $ se $ _3 $ crystal的声子模式。结果,在非线性过程中同时激发了几种拉曼活性模式,而其中一个具有$ e_g^2 $对称性,在激发后的前两个picseconds中经历了动态分裂。对相应的角散射模式进行了修改,表明具有较低晶体对称性的非平衡状态的两个声子模式共存。我们还观察到原始$ e_g^2 $模式的短寿命频率分裂,激发后立即达到$ \ sim 25 \%$ the dembed value的$ \ sim 25 \%$。这种瞬态状态以$ \ sim $ 1 ps的特征时间放松,这接近了令人振奋的兴奋红外活性$ e_u^1 $模式的平方幅度的衰减时间。我们讨论了动态分裂的可能机制:由于非线性电子 - phonon相互作用而引起的强烈$ e_u^1 $振动引起的非线性晶格变形和各向异性电子分布的激发。我们的数据还包含一个证据,以支持bi $ _2 $ _2 $ _2 $ se $ _3 $ hight terahertz pulses兴奋的总和频率的拉曼生成的机制。
Selective excitation of coherent high-amplitude vibrations of atoms in a solid can induce exotic nonequilibrium states, in which the character of interactions between electronic, magnetic and lattice degrees of freedom is considerably altered and the underlying symmetries are broken. Here we use intense single-cycle terahertz pulses to drive coherently the dipole-active $E_u^1$ phonon mode of a Bi$_2$Se$_3$ crystal. As a result, several Raman-active modes are simultaneously excited in a nonlinear process, while one of them, having the $E_g^2$ symmetry, experiences dynamical splitting during the first two picoseconds after excitation. The corresponding angular scattering pattern is modified indicating coexistence of two phonon modes characteristic of a nonequilibrium state with a lower crystal symmetry. We observe also a short-lived frequency splitting of the original $E_g^2$ mode that immediately after excitation amounts to $\sim 25\%$ of the unperturbed value. This transient state relaxes with a characteristic time of $\sim$ 1 ps, that is close to the decay time of the squared amplitude of the resonantly excited infrared-active $E_u^1$ mode. We discuss possible mechanisms of the dynamical splitting: nonlinear lattice deformation caused by the intense $E_u^1$ vibrations and excitation of anisotropic electronic distribution due to nonlinear electron-phonon interaction. Our data also contain an evidence in favor of the sum-frequency Raman mechanism of generation of the coherent $E_g^2$ phonons in Bi$_2$Se$_3$ excited by terahertz pulses.