Carrier density crossover and quasiparticle mass enhancement in a doped 5dd Mott insulator

Abstract

High-temperature superconductivity in cuprates emerges upon doping the parent Mott insulator. Robust signatures of the low-doped electronic state include a Hall carrier density that initially tracks the number of doped holes and the emergence of an anisotropic pseudogap; the latter characterised by disconnected Fermi arcs, closure at a critical doping level pβˆ—β‰ˆ0.19p^* \approx 0.19, and, in some cases, a strongly enhanced carrier effective mass. In Sr2_2IrO4_4, a spin-orbit-coupled Mott insulator often regarded as a 5dd analogue of the cuprates, surface probes have revealed the emergence of an anisotropic pseudogap and Fermi arcs under electron doping, though neither the corresponding pβˆ—p^* nor bulk signatures of pseudogap closing have as yet been observed. Here, we report electrical transport and specific heat measurements on Sr2βˆ’x_{2-x}Lax_xIrO4_4 over an extended doping range 0 ≀x≀\leq x \leq 0.20. The effective carrier density nHn_{\rm H} at low temperatures exhibits a crossover from nHβ‰ˆxn_{\rm H} \approx x to nHβ‰ˆ1+xn_{\rm H} \approx 1+x near xx = 0.16, accompanied by \textcolor{blue}{a five-orders-of-magnitude increase in conductivity} and a six-fold enhancement in the electronic specific heat. These striking parallels in the bulk pseudogap phenomenology, coupled with the absence of superconductivity in electron-doped Sr2_2IrO4_4, disfavour the pseudogap as a state of precursor pairing and thereby narrow the search for the key ingredient underpinning the formation of the superconducting condensate in doped Mott insulators

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