Unconventional excitonic insulators in two-dimensional topological materials
L. Maisel Licer\'an, H. T. C. Stoof

TL;DR
This paper theoretically investigates unconventional excitonic insulators in 2D topological materials, revealing a chiral d-wave order parameter and a high transition temperature, emphasizing the interplay of topology and interactions.
Contribution
It introduces a novel theoretical framework including non-conserving interaction channels, predicting an unconventional chiral d-wave excitonic insulator in 2D topological materials.
Findings
Order parameter is a chiral d-wave symmetry.
Transition temperature estimated between 50 K and 75 K.
Unconventional pairing influenced by topology and long-range interactions.
Abstract
Bound electron-hole pairs in semiconductors known as excitons can form a coherent state at low temperatures akin to a BCS condensate. The resulting phase is known as the excitonic insulator and has superfluid properties. Here we theoretically study the excitonic insulator in a pair of recently proposed two-dimensional candidate materials with nontrivial band topology. Contrary to previous works, we include interaction channels that violate the individual electron and hole number conservations. These are on equal footing with the number-conserving processes due to the substantial overlap of Wannier orbitals of different bands, which cannot be exponentially localized due to the nontrivial Chern numbers of the latter. Their inclusion is crucial to determine the symmetry of the electron-hole pairing, and by performing mean-field calculations at nonzero temperatures we find that the order…
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