Energy bandpass filtering in superlattice phase change memories
Abstract
We propose energy bandpass filtering employed using the idea of anti-reflection heterostructures as a means to reduce the energy requirements of a superlattice phase change memory based on GeTe and SbTe heterostructures. Different configurations of GeTe/SbTe superlattices are studied using the non-equilibrium Green's function approach. Our electronic transport simulations calculate the coupling parameter for the high resistance covalent state, to that of the stable low resistance resonant state, maintaining the ON/OFF ratio of 100 for a reliable read operation. By examining various configurations of the superlattice structures we conclude that the inclusion of anti-reflection units on both sides of the superlattice increases the overall ON/OFF ratio by an order of magnitude which can further help in scaling down of the memory device. It is also observed that the device with such anti-reflection units exhibits 32 lesser RESET voltage than the most common PCM superlattice configurations and 27 in the presence of elastic dephasing. Moreover, we also find that the ON/OFF ratios in these devices are also resilient to the variations in the periodicity of the superlattice.
Keywords
Cite
@article{arxiv.1902.10551,
title = {Energy bandpass filtering in superlattice phase change memories},
author = {Jyotsna Bahl and Pankaj Priyadarshi and Bhaskaran Muralidharan},
journal= {arXiv preprint arXiv:1902.10551},
year = {2020}
}