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Phase structure of a U(1) lattice gauge theory with dual gauge fields
Authors:Tomoyoshi Ono  Yuki Moribe  Shunsuke Takashima  Ikuo Ichinose  Tetsuo Matsui  Kazuhiko Sakakibara
Affiliation:1. Department of Applied Physics, Nagoya Institute of Technology, Nagoya 466-8555, Japan;2. Department of Physics, Kinki University, Higashi-Osaka 577-8502, Japan;3. Department of Physics, Nara National College of Technology, Yamatokohriyama 639-1080, Japan
Abstract:We introduce a U(1) lattice gauge theory with dual gauge fields and study its phase structure. This system is partly motivated by unconventional superconductors like extended s-wave and d  -wave superconductors in the strongly-correlated electron systems and also studies of the t–JtJ model in the slave-particle representation. In this theory, the “Cooper-pair” (or RVB spinon-pair) field is put on links of a cubic lattice due to strong on-site repulsion between original electrons in contrast to the ordinary s  -wave pair field on sites. This pair field behaves as a gauge field dual to the U(1) gauge field coupled with the hopping of electrons or quasi-particles of the t–JtJ model, holons and spinons. By Monte Carlo simulations we study this lattice gauge model and find a first-order phase transition from the normal state to the Higgs (superconducting) phase. Each gauge field works as a Higgs field for the other gauge field. This mechanism requires no scalar fields in contrast to the ordinary Higgs mechanism. An explicit microscopic model is introduced, the low-energy effective theory of which is viewed as a special case of the present model.
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