Probing the Melting of Two-dimensional Quantum Wigner Crystal via its Screening Efficiency
ORAL
Abstract
One of the most fundamental and yet elusive collective phases of an interacting electron system is the quantum Wigner crystal (WC), an ordered array of electrons dominated by Coulomb repulsion energy. In low-disorder, two-dimensional (2D) electron systems, the quantum WC is known to be favored at very low temperatures (T) and small Landau level filling factors (ν). Pinned by the disorder potential, the WC phase exhibits an insulating behavior. An experimental determination of a T vs ν phase diagram for the melting of the WC, however, has proved to be challenging. Here we use capacitance measurements to probe the 2D WC thorough its effective screening as a function of T and ν. We find that, as expected, the screening efficiency of the pinned WC is very poor at very low T and improves at higher T once the WC melts. Surprisingly, the screening efficiency shows a well-defined maximum at a T which is close to the previously-reported melting temperature of the WC. Our experimental results suggest a new method to map out the T vs ν phase diagram of the magnetic-field-induced WC precisely.
*Work supported by NSF (Grants DMR 1709076, ECCS 1508925, MRSEC DMR 1420541), the DOE (Grant DE-FG02-00-ER45841), and the Gordon and Betty Moore Foundation (Grant No. GBMF4420).
–
Presenters
-
Hao Deng
- Princeton University