Hidden electronic phase in strained few-layer 1T-TaS2
arXiv:2112.11680 · doi:10.1103/PhysRevMaterials.5.124003
Abstract
Layered van der Waals materials are exciting as they often host multiple, competing electronic phases. This article reports experimental observation of the co-existence of insulating and metallic phases deep within the commensurate charge density wave phase in high-quality devices of few-layer 1T-TaS2. Through detailed conductance fluctuation spectroscopy of the electronic ground state, we establish that the mixed-phase consists of insulating regions surrounded by one-dimensional metallic domain walls. We show that the electronic ground state of 1T-TaS2 can be affected drastically by strain, eventually leading to the collapse of the Mott gap in the commensurate charge density wave phase. Our study resolves an outstanding question, namely the effect of the inter-layer coupling strength on the electronic phases in layered van der Waals materials.
7 pages, 6 figures
References in corpus (9)
- Band insulator to Mott insulator transition in 1T-TaS
- Possible strain induced Mott gap collapse in 1T-TaS
- Nanoscale electromechanical resonators as probes of the charge density wave transition in NbSe
- Low frequency random telegraphic noise (RTN) and 1/f noise in the rare-earth manganite PrCaMnO near the charge-ordering transition
- Correlated Non-Gaussian phase fluctuations in LaAlO/SrTiO heterointerface
- A set-up for measurement of low frequency conductance fluctuation (noise) using digital signal processing techniques
- Quantum phase transition in few-layer NbSe probed through quantized conductance fluctuations
- Probing a spin-glass state in SrRuO3 thin films through higher-order statistics of resistance fluctuations
- Probing defect states in few-layer MoS by conductance fluctuation spectroscopy