Switchable Crystalline Islands in Super Lubricant Arrays
Youngki Yeo, Yoav Sharaby, Nirmal Roy, Noam Raab, Watanabe Kenji,, Takashi Taniguchi, Moshe Ben Shalom

TL;DR
This paper demonstrates reversible switching of single-domain polytypes in nanoscale islands within super lubricant vdW arrays, enabling new device functionalities like ultra-sensitive detectors and nonvolatile multi-ferroic transistors.
Contribution
It introduces a method to control and switch crystalline polytypes in nanoscale islands embedded in vdW arrays, overcoming previous limitations of boundary strip dependence.
Findings
Reversible nucleation and annihilation of boundary strips observed.
Precise control of boundary strip positioning and interlayer twist achieved.
Potential for novel device applications like SlideTronics and neuromorphic memory.
Abstract
Expanding the performance of field effect devices is a key challenge of the ever-growing chip industry at the core of current technologies. A highly desired nonvolatile response in tiny multiferroic transistors is expected by electric field control of atomic movements rather than the typical electronic redistribution. Recently, such field effect control of structural transitions was established in commensurate stacking configurations of honeycomb van der Waals (vdW) polytypes by sliding narrow boundary dislocations between oppositely polarized domains. The interfacial ferroelectric response, however, relied on preexisting boundary strips between relatively large micron-scale domains, severely limiting practical implementations. Here, we report the robust switching of single-domain polytypes in nm-scale islands embedded in super lubricant vdW arrays. We etch cavities into a thin layered…
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Taxonomy
TopicsLubricants and Their Additives · Adhesion, Friction, and Surface Interactions · Gear and Bearing Dynamics Analysis
