Minami Yasuo, Araki Kotaro, Dao Thang Duy, Nagao Tadaaki, Kitajima Masahiro, Takeda Jun, Katayama Ikufumi
Department of Physics, Faculty of Engineering, Yokohama National University, Yokohama 240-8501, Japan.
International Center for Materials Nanoarchitectonics, National Institute for Materials Science, Tsukuba 305-0044, Japan.
Sci Rep. 2015 Nov 2;5:15870. doi: 10.1038/srep15870.
Dirac-like electrons in solid state have been of great interest since they exhibit many peculiar physical behaviors analogous to relativistic mechanics. Among them, carriers in graphene and surface states of topological insulators are known to behave as massless Dirac fermions with a conical band structure in the two-dimensional momentum space, whereas electrons in semimetal bismuth (Bi) are expected to behave as massive Dirac-like fermions in the three-dimensional momentum space, whose dynamics is of particular interest in comparison with that of the massless Dirac fermions. Here, we demonstrate that an intense terahertz electric field transient accelerates the massive Dirac-like fermions in Bi from classical Newtonian to the relativistic regime; the electrons are accelerated approaching the effective "speed of light" with the "relativistic" beta β = 0.89 along the asymptotic linear band structure. As a result, the effective electron mass is enhanced by a factor of 2.4.
固态中的类狄拉克电子一直备受关注,因为它们展现出许多类似于相对论力学的奇特物理行为。其中,石墨烯中的载流子以及拓扑绝缘体的表面态在二维动量空间中表现为具有锥形能带结构的无质量狄拉克费米子,而半金属铋(Bi)中的电子预计在三维动量空间中表现为有质量的类狄拉克费米子,与无质量狄拉克费米子相比,其动力学特性尤为引人关注。在此,我们证明了强太赫兹电场瞬变能将铋中的有质量类狄拉克费米子从经典牛顿 regime 加速到相对论 regime;电子沿着渐近线性能带结构加速,接近有效“光速”,“相对论性”β = 0.89。结果,有效电子质量增加了2.4倍。