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Melting of a 2D Quantum Electron Solid in High Magnetic Field

Strongly Correlated Electrons 2007-05-23 v2 Mesoscale and Nanoscale Physics

Abstract

The melting temperature (TmT_m) of a solid is generally determined by the pressure applied to it, or indirectly by its density (nn) through the equation of state. This remains true even for helium solids\cite{wilk:67}, where quantum effects often lead to unusual properties\cite{ekim:04}. In this letter we present experimental evidence to show that for a two dimensional (2D) solid formed by electrons in a semiconductor sample under a strong perpendicular magnetic field\cite{shay:97} (BB), the TmT_m is not controlled by nn, but effectively by the \textit{quantum correlation} between the electrons through the Landau level filling factor ν\nu=nh/eBnh/eB. Such melting behavior, different from that of all other known solids (including a classical 2D electron solid at zero magnetic field\cite{grim:79}), attests to the quantum nature of the magnetic field induced electron solid. Moreover, we found the TmT_m to increase with the strength of the sample-dependent disorder that pins the electron solid.

Keywords

Cite

@article{arxiv.cond-mat/0604004,
  title  = {Melting of a 2D Quantum Electron Solid in High Magnetic Field},
  author = {Yong P. Chen and G. Sambandamurthy and Z. H. Wang and R. M. Lewis and L. W. Engel and D. C. Tsui and P. D. Ye and L. N. Pfeiffer and K. W. West},
  journal= {arXiv preprint arXiv:cond-mat/0604004},
  year   = {2007}
}

Comments

Some typos corrected and 2 references added. Final version with minor editoriol revisions published in Nature Physics