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Engineering Atomic-Scale Patterning and Resistive Switching in 2D Crystals and Application in Image Processing. | LitMetric

Engineering Atomic-Scale Patterning and Resistive Switching in 2D Crystals and Application in Image Processing.

Adv Mater

Key Laboratory of Artificial Micro- and Nano-structures of Ministry of Education, and School of Physics and Technology, Wuhan University, Wuhan, 430072, China.

Published: December 2023

AI Article Synopsis

  • The ultrathin nature of 2D layered materials allows for better control of their properties through defects and modifications compared to bulk materials.
  • Innovative designs like moiré superlattices enable precise adjustments to the atomic and electronic systems, leading to tailored functionalities.
  • The study presents scalable atomic-scale patterning in cuprous telluride, achieving controllable switching and highlighting potential uses in image enhancement with memristors.

Article Abstract

The ultrathin thickness of 2D layered materials affords the control of their properties through defects, surface modification, and electrostatic fields more efficiently compared with bulk architecture. In particular, patterning design, such as moiré superlattice patterns and spatially periodic dielectric structures, are demonstrated to possess the ability to precisely control the local atomic and electronic environment at large scale, thus providing extra degrees of freedom to realize tailored material properties and device functionality. Here, the scalable atomic-scale patterning in superionic cuprous telluride by using the bonding difference at nonequivalent copper sites is reported. Moreover, benefitting from the natural coupling of ordered and disordered sublattices, controllable piezoelectricity-like multilevel switching and bipolar switching with the designed crystal structure and electrical contact is realized, and their application in image enhancement is demonstrated. This work extends the known classes of patternable crystals and atomic switching devices, and ushers in a frontier for image processing with memristors.

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Source
http://dx.doi.org/10.1002/adma.202306850DOI Listing

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