While two-terminal HfOX (x<2) memristor devices have been studied for ion transport and current evolution, there have been limited reports on the effect of the long-range thermal environment on their performance. In this work, amorphous-HfOX based memristor devices on two different substrates, thin SiO2(280 nm)/Si and glass, with different thermal conductivities in the range from 1.2 to 138 W/m-K were fabricated. Devices on glass substrates exhibit lower reset voltage, wider memory window and, in turn, a higher performance window. In addition, the devices on glass show better endurance than the devices on the SiO2/Si substrate. These devices also show non-volatile multi-level resistances at relatively low operating voltages which is critical for neuromorphic computing applications. A Multiphysics COMSOL computational model is presented that describes the transport of heat, ions and electrons in these structures. The combined experimental and COMSOL simulation results indicate that the long-range thermal environment can have a significant impact on the operation of HfOx-based memristors and that substrates with low thermal conductivity can enhance switching performance.
@article{arxiv.1912.03545,
title = {Substrate Dependent Resistive Switching in Amorphous-HfOx Memristors: An Experimental and Computational Investigation},
author = {Pradip Basnet and Darshan G Pahinkar and Matthew P. West and Christopher J. Perini and Samuel Graham and Eric M. Vogel},
journal= {arXiv preprint arXiv:1912.03545},
year = {2020}
}
Comments
8 pages, 9 figures. Journal of Materials Chemistry C, 2020