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Spin-charge separation and unconventional superconductivity in textit{t}-textit{J} model on honeycomb lattice

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arxiv 2301.02274 v1 pith:D4E4YMAA submitted 2023-01-05 cond-mat.str-el cond-mat.supr-con

Spin-charge separation and unconventional superconductivity in textit{t}-textit{J} model on honeycomb lattice

classification cond-mat.str-el cond-mat.supr-con
keywords modellatticeseparationspin-chargesuperconductivityattractivedominatesdoped
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The physical nature of doped Mott-insulator has been intensively studied for more than three decades. It is well known that the single band Hubbard model or $t$-$J$ model on the bipartite lattice is the simplest model to describe a doped Mott insulator. Unfortunately, the key mechanism of superconductivity in these toy models is still under debate. In this paper, we propose a new mechanism for the $d+id$-wave superconductivity (SC) that occurs in the small-doping region of the honeycomb lattice $t$-$J$ model based on the Grassmann tensor product state numerical simulation and spin-charge separation formulation. Moreover, in the presence of anti-ferromagnetic order, a continuum effective field theory for holons is developed near half-filling. It reveals the competition between repulsive and attractive holon interactions induced by spinon fluctuations and gauge fluctuations, respectively. At a large value of $t/J$, the repulsive interaction dominates, leading to the non-Fermi liquid like behavior; while in a moderate range of $t/J$, the attractive interaction dominates, leading to the SC order. Possible experimental detection of spin-charge separation phenomena is also discussed.

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