论文标题
磁场诱导的Wigner固体的热和量子熔化相图
Thermal and quantum melting phase diagrams for a magnetic-field-induced Wigner solid
论文作者
论文摘要
一个足够大的垂直磁场会淬灭相互作用的二维(2D)fermions系统的动能(FERMI)能量,使它们容易受到Wigner固体(WS)相的形成,其中带电的载体在该阶段中,在该期中,该阶段在该阶段中,在该阶段中,在周期阵列中自行组织自身,以最小化其库仑抑制能量。在限于调制掺杂GAAS异质结构的低端阶2D电子系统中,磁场诱导的WS的签名出现在低温下以及很小的Landau级填充因子($ν\ simeq1/5 $)。另一方面,由于较大的孔有效质量和随后的Landau级别的混合,在稀释GAAS 2D \ textit {hole}系统中,WS以相对较高的填充物形式($ν\ simeq1/3 $)形成。在这里,我们报告了2D孔的WS-Liquid \ textIt {热融化}的基本温度与填充相图的测量值。此外,通过更改2D孔密度,我们还探测了它们的Landau级别的混合与填充WS-Liquid \ textit {量子熔化}相图。我们发现我们的数据与最近计算的结果非常吻合,尽管仍然有趣的微妙之处。
A sufficiently large perpendicular magnetic field quenches the kinetic (Fermi) energy of an interacting two-dimensional (2D) system of fermions, making them susceptible to the formation of a Wigner solid (WS) phase in which the charged carriers organize themselves in a periodic array in order to minimize their Coulomb repulsion energy. In low-disorder 2D electron systems confined to modulation-doped GaAs heterostructures, signatures of a magnetic-field-induced WS appear at low temperatures and very small Landau level filling factors ($ν\simeq1/5$). In dilute GaAs 2D \textit{hole} systems, on the other hand, thanks to the larger hole effective mass and the ensuing Landau level mixing, the WS forms at relatively higher fillings ($ν\simeq1/3$). Here we report our measurements of the fundamental temperature vs. filling phase diagram for the 2D holes' WS-liquid \textit{thermal melting}. Moreover, via changing the 2D hole density, we also probe their Landau level mixing vs. filling WS-liquid \textit{quantum melting} phase diagram. We find our data to be in good agreement with the results of very recent calculations, although intriguing subtleties remain.