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Imaging quantum melting in a disordered 2D Wigner solid
- Xiang, Ziyu;
- Li, Hongyuan;
- Xiao, Jianghan;
- Naik, Mit H;
- Ge, Zhehao;
- He, Zehao;
- Chen, Sudi;
- Nie, Jiahui;
- Li, Shiyu;
- Jiang, Yifan;
- Sailus, Renee;
- Banerjee, Rounak;
- Taniguchi, Takashi;
- Watanabe, Kenji;
- Tongay, Sefaattin;
- Louie, Steven G;
- Crommie, Michael F;
- Wang, Feng
Published Web Location
https://doi.org/10.1126/science.ado7136Abstract
Two-dimensional strongly interacting electrons crystalize into a solid phase known as the Wigner crystal at low densities and form a Fermi liquid at high densities. At intermediate densities, the two-dimensional solid evolves into a strongly correlated liquid phase around a critical density. We observed this quantum melting of a disordered Wigner solid in bilayer molybdenum diselenide (MoSe2) using a noninvasive scanning tunneling microscopy imaging technique. At low densities, the Wigner solid forms nanocrystalline domains pinned by local disorder. It exhibits a quantum densification behavior with increased densities in the solid phase. Above a threshold density, the Wigner solid melts locally and enters a mixed phase in which solid and liquid regions coexist. The liquid regions expand and form a percolation network at even higher densities.
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