4.7 Review

Novel charm of 2D materials engineering in memristor: when electronics encounter layered morphology

Journal

NANOSCALE HORIZONS
Volume 7, Issue 5, Pages 480-507

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2nh00031h

Keywords

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Funding

  1. National Natural Science Foundation of China [61974093]
  2. Science and Technology Innovation Commission of Shenzhen [RCYX20200714114524157, JCYJ20180507182042530, JCYJ20180507182000722]
  3. NTUT-SZU Joint Research Program

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The family of 2D materials has attracted much attention due to its unique characteristics, especially in the field of electronic devices and circuits. In this article, the authors discuss the synthesis, yield, and variability mechanisms of 2D materials and present some methods that are advantageous for large-scale production. However, further efforts are still needed for commercial applications.
The family of two-dimensional (2D) materials composed of atomically thin layers connected via van der Waals interactions has attracted much curiosity due to a variety of intriguing physical, optical, and electrical characteristics. The significance of analyzing statistics on electrical devices and circuits based on 2D materials is seldom underestimated. Certain requirements must be met to deliver scientific knowledge that is beneficial in the field of 2D electronics: synthesis and fabrication must occur at the wafer level, variations in morphology and lattice alterations must be visible and statistically verified, and device dimensions must be appropriate. The authors discussed the most recent significant concerns of 2D materials in the provided prose and attempted to highlight the prerequisites for synthesis, yield, and mechanism behind device-to-device variability, reliability, and durability benchmarking under memristors characteristics; they also indexed some useful approaches that have already been reported to be advantageous in large-scale production. Commercial applications, on the other hand, will necessitate further effort.

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