English

The Broken Symmetry of Two-Component $\nu=1/2$ Quantum Hall States

Condensed Matter 2016-08-31 v2

Abstract

We show that the recently discovered ν=1/2\nu=1/2 quantum Hall states in bilayer systems are triplet p-wave pairing states of composite Fermions, of exactly the same form as 3^{3}He superfluids. The observed persistence (though weakening) of the ν=1/2\nu=1/2 state in the two- to one-component crossover region corresponds to a continuous deformation of the so-called (331) state towards the ``Pfaffian" state, identical to the well known A to A1_{1} transition in 3^{3}He. This deformation also demonstrates the remarkable fact that electrons can release and capture ``vortices" in a continuous and incompressible manner through spin rotations. The broken symmetry of the triplet pairing state is a ``pairing" vector d{\bf d}. It also implies a (pseudo-spin) magnetization id×d\propto i{\bf d}\times {\bf d}^{\ast}. In the presence of layer tunneling, the (331) state ({\bf d} real) is unstable against other states with a magnetization ({\bf d} complex). The recently observed persistence of the ν=5/2\nu=5/2 state in single layer systems in the two- to one-component crossover region is also consistent with triplet pairing interpretation.

Keywords

Cite

@article{arxiv.cond-mat/9503008,
  title  = {The Broken Symmetry of Two-Component $\nu=1/2$ Quantum Hall States},
  author = {Tin-Lun Ho},
  journal= {arXiv preprint arXiv:cond-mat/9503008},
  year   = {2016}
}

Comments

Misprints in a paragraph on p.7 of previous version corrected. All results remain indentical.