Wang Sheng, Scarabelli Diego, Du Lingjie, Kuznetsova Yuliya Y, Pfeiffer Loren N, West Ken W, Gardner Geoff C, Manfra Michael J, Pellegrini Vittorio, Wind Shalom J, Pinczuk Aron
Department of Applied Physics and Applied Mathematics, Columbia University, New York, NY, USA.
Rigetti Quantum Computing, Berkeley, CA, USA.
Nat Nanotechnol. 2018 Jan;13(1):29-33. doi: 10.1038/s41565-017-0006-x. Epub 2017 Nov 27.
Charge carriers in graphene behave like massless Dirac fermions (MDFs) with linear energy-momentum dispersion , providing a condensed-matter platform for studying quasiparticles with relativistic-like features. Artificial graphene (AG)-a structure with an artificial honeycomb lattice-exhibits novel phenomena due to the tunable interplay between topology and quasiparticle interactions . So far, the emergence of a Dirac band structure supporting MDFs has been observed in AG using molecular , atomic and photonic systems , including those with semiconductor microcavities . Here, we report the realization of an AG that has a band structure with vanishing density of states consistent with the presence of MDFs. This observation is enabled by a very small lattice constant (a = 50 nm) of the nanofabricated AG patterns superimposed on a two-dimensional electron gas hosted by a high-quality GaAs quantum well. Resonant inelastic light-scattering spectra reveal low-lying transitions that are not present in the unpatterned GaAs quantum well. These excitations reveal the energy dependence of the joint density of states for AG band transitions. Fermi level tuning through the Dirac point results in a collapse of the density of states at low transition energy, suggesting the emergence of the MDF linear dispersion in the AG.
石墨烯中的电荷载流子表现得像具有线性能量 - 动量色散的无质量狄拉克费米子(MDFs),为研究具有类相对论特征的准粒子提供了一个凝聚态平台。人工石墨烯(AG)——一种具有人工蜂窝晶格的结构——由于拓扑结构和准粒子相互作用之间的可调相互作用而展现出新颖的现象。到目前为止,已经在使用分子、原子和光子系统(包括那些具有半导体微腔的系统)的AG中观察到支持MDFs的狄拉克能带结构的出现。在这里,我们报告了一种AG的实现,其能带结构的态密度消失,这与MDFs的存在相一致。这一观察结果是由叠加在高质量砷化镓量子阱所承载的二维电子气上的纳米制造AG图案的非常小的晶格常数(a = 50 nm)实现的。共振非弹性光散射光谱揭示了在未图案化的砷化镓量子阱中不存在的低能跃迁。这些激发揭示了AG能带跃迁的联合态密度的能量依赖性。通过狄拉克点调节费米能级会导致低跃迁能量下态密度的崩塌,这表明在AG中出现了MDF线性色散。