论文标题
金属中热量物理的特性和挑战:MGB $ _2 $和其他化合物
Properties and challenges of hot-phonon physics in metals: MgB$_2$ and other compounds
论文作者
论文摘要
从平衡的系统中,电子和集体模式的超快动力学受到关键的控制,这些能量转移从电子自由度(通常吸收的泵源的能量)到自由度。在常规金属中,这种过程导致晶格的总体加热,通常由有效的晶格温度$ t _ {\ rm pH} $描述,直到达到所有自由度的最终平衡。然而,在特定材料中,很少有晶格模式为能量传递提供了优先通道,从而导致振动的非热分布和{\ em热声子}的发作,即具有比其他模式高得多的晶格模式。热声子通常在半导体或半学化合物(例如石墨烯)中遇到,其中朝向热模式的优先通道取决于还原的电子相空间。遵循不同的路径,由于电子(EL-PH)耦合的强各向异性,最近在文献中也引起了文献中最近在金属中获得热量物理的可能性。在本文中,以MGB $ _2 $为代表性的例子,我们回顾了带有各向异性EL-PH耦合的金属中的热量情况,我们讨论了热声子的可观察指纹。还讨论了对其他金属化合物中热声子的预测和实验观察的新观点。
The ultrafast dynamics of electrons and collective modes in systems out of equilibrium is crucially governed by the energy transfer from electronic degrees of freedom, where the energy of the pump source is usually absorbed, to lattice degrees of freedom. In conventional metals such process leads to an overall heating of the lattice, usually described by an effective lattice temperature $T_{\rm ph}$, until final equilibrium with all the degrees of freedom is reached. In specific materials, however, few lattice modes provide a preferential channel for the energy transfer, leading to a non-thermal distribution of vibrations and to the onset of {\em hot phonons}, i.e., lattice modes with a much higher population than the other modes. Hot phonons are usually encountered in semiconductors or semimetal compounds, like graphene, where the preferential channel towards hot modes is dictated by the reduced electronic phase space. Following a different path, the possibility of obtaining hot-phonon physics also in metals has been however also recently prompted in literature, as a result of a strong anisotropy of the electron-phonon (el-ph) coupling. In the present paper, taking MgB$_2$ as a representative example, we review the physical conditions that allow a hot-phonon scenario in metals with anisotropic el-ph coupling, and we discuss the observable fingerprints of hot phonons. Novel perspectives towards the prediction and experimental observation of hot phonons in other metallic compounds are also discussed.