A pairing hypothesis based on resonating valence bond state for hole doped copper oxide high temperature superconductors
arXiv:1206.0862
Abstract
To explain the high-temperature superconductivity of hole-doped copper-oxide high-temperature superconductors (HDCO-HTSCs), Anderson proposed a theory: (A) the pseudogap state is a resonating valence-bond (RVB) state below T* and (B) the RVB state translates itself into high-temperature superconducting state below Tc. In this paper we abandon Anderson theory B but still retain Anderson theory A and add three new hypotheses. Jointed three hypotheses with Anderson theory A, we construct an effective Hamiltonian of HDCO-HTSCs and explain why Tc-line is a dome in phase diagram and why HDCO-HTSCs have a higher Tc than that of conventional superconductors.
8 pages, 4 figures, 41 conference
References in corpus (11)
- Quantum oscillations and the Fermi surface in an underdoped high-Tc superconductor
- Broken rotational symmetry in the pseudogap phase of a high-Tc superconductor
- Two Energy Scales and two Quasiparticle Dynamics in the Superconducting State of Underdoped Cuprates
- From a single-band metal to a high-temperature superconductor via two thermal phase transitions
- From a single-band metal to a high-temperature superconductor via two thermal phase transitions (Supporting Material)
- Phase competition in trisected superconducting dome
- The Ground State of the Pseudogap in Cuprate Superconductors
- Coexistence of Fermi arcs and Fermi pockets in a high Tc copper oxide superconductor
- Tracking Cooper Pairs in a Cuprate Superconductor by Ultrafast Angle-Resolved Photoemission
- Protected nodes and the collapse of the Fermi arcs in high Tc cuprates
- Onset of a boson mode at superconducting critical point of underdoped YBa2Cu3Oy