Temperature induced first order electronic topological transition in -AgSe
arXiv:2110.13554 · doi:10.1063/5.0039031
Abstract
-AgSe is a promising material for room temperature thermoelectric applications and magneto-resistive sensors. However, no attention was paid earlier to the hysteresis in the temperature dependence of resistivity (()). Here, we show that a broad hysteresis above 35 K is observed not only in (), but also in other electronic properties such as Hall coefficient (()), Seebeck coefficient, thermal conductivity and ultraviolet photoelectron spectra (UPS). We also show that the hysteresis is not associated with a structural transition. The () and () show that -AgSe is semiconducting above 300 K, but metallicity is retained below 300 K. While electronic states are absent in the energy range from the Fermi level () to 0.4 eV below the at 300 K, a distinct Fermi edge is observed in the UPS at 15 K suggesting that the -AgSe undergoes an electronic topological transition from a high temperature semiconducting state to a low temperature metallic state. Our study reveals that a constant and moderately high thermoelectric figure of merit () in the range 300-395 K is observed due to the broad semiconductor to metal transition in -AgSe.
6 pages, 4 figures, 1 table
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