Tuning topological superconductivity within the tt-JJ-UU model of twisted bilayer cuprates

Abstract

We carry out a theoretical study of unconventional superconductivity in twisted bilayer cuprates as a function of electron density and layer twist angle. The bilayer tt-JJ-UU model is employed and analyzed within the framework of a generalized variational wave function approach in the statistically-consistent Gutzwiller formulation. The constructed phase diagram encompasses both gapless dd-wave state (reflecting the pairing symmetry of untwisted copper-oxides) and gapped d+eiφdd+\mathrm{e}^{i\varphi}d phase that breaks spontaneously time-reversal-symmetry (TRS) and is characterized by nontrivial Chern number. We find that d+eiφdd+\mathrm{e}^{i\varphi}d state occupies a non-convex butterfly-shaped region in the doping vs. twist-angle plane, and demonstrate the presence of previously unreported reentrant TRS-breaking phase on the underdoped side of the phase diagram. This circumstance supports the emergence of topological superconductivity for fine-tuned twist angles away from 4545^\circ. Our analysis of the microscopically derived Landau free energy functional points toward sensitivity of the superconducting order parameter to small perturbations close to the topological state boundary

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