English

On the metal-insulator-transition in vanadium dioxide

Materials Science 2015-06-03 v1

Abstract

Vanadium dioxide (VO2_2) undergoes a metal-insulator transition (MIT) at 340 K with the structural change between tetragonal and monoclinic crystals as the temperature is lowered. The conductivity σ\sigma drops at MIT by four orders of magnitude. The low-temperature monoclinic phase is known to have a lower ground-state energy. The existence of a kk-vector k{\boldsymbol k} is prerequisite for the conduction since the k{\boldsymbol k} appears in the semiclassical equation of motion for the conduction electron (wave packet). Each wave packet is, by assumption, composed of the plane waves proceeding in the k{\boldsymbol k} direction perpendicular to the plane. The tetragonal (VO2_2)3_3 unit cells are periodic along the crystal's xx-, yy-, and z-axes, and hence there are three-dimensional kk-vectors. The periodicity using the non-orthogonal bases does not legitimize the electron dynamics in solids. There are one-dimensional k{\boldsymbol k} along the c-axis for a monoclinic crystal. We believe this decrease in the dimensionality of the kk-vectors is the cause of the conductivity drop. Triclinic and trigonal (rhombohedral) crystals have no kk-vectors, and hence they must be insulators. The majority carriers in graphite are "electrons", which is shown by using an orthogonal unit cell for the hexagonal lattice.

Keywords

Cite

@article{arxiv.1201.3700,
  title  = {On the metal-insulator-transition in vanadium dioxide},
  author = {Shigeji Fujita and Azita Jovaini and Salvador Godoy and Akira Suzuki},
  journal= {arXiv preprint arXiv:1201.3700},
  year   = {2015}
}

Comments

8 pages, 1 figure

R2 v1 2026-06-21T20:06:10.249Z