Bias-Voltage Driven Switching of the Charge-Density-Wave and Normal Metallic Phases in 1T-TaS<sub>2</sub> Thin-Film Devices.

Geremew, Adane K; Rumyantsev, Sergey; Kargar, Fariborz; Debnath, Bishwajit; Nosek, Adrian; Bloodgood, Matthew A; Bockrath, Marc; Salguero, Tina T et al. · ACS Nano · 2019

basic_science · Level V

Where this comes from

Abstract

We report on switching among three charge-density-wave phases, commensurate, nearly commensurate, incommensurate, and the high-temperature normal metallic phase in thin-film 1T-TaS<sub>2</sub> devices induced by application of an in-plane bias voltage. The switching among all phases has been achieved over a wide temperature range, from 77 to 400 K. The low-frequency electronic noise spectroscopy has been used as an effective tool for monitoring the transitions, particularly the switching from the incommensurate charge-density-wave phase to the normal metal phase. The noise spectral density exhibits sharp increases at the phase transition points, which correspond to the step-like changes in resistivity. Assignment of the phases is consistent with low-field resistivity measurements over the temperature range from 77 to 600 K. Analysis of the experimental data and calculations of heat dissipation indicate that Joule heating plays a dominant role in the voltage induced transitions in the 1T-TaS<sub>2</sub> devices on Si/SiO<sub>2</sub> substrates, contrary to some recent claims. The possibility of the bias-voltage switching among four different phases of 1T-TaS<sub>2</sub> is a promising step toward nanoscale device applications. The results also demonstrate the potential of noise spectroscopy for investigating and identifying phase transitions in the materials.