Strain Anisotropy Driven Spontaneous Formation of Nanoscrolls from 2D Janus Layers

Author:

Sayyad Mohammed1,Qin Ying1,Kopaczek Jan12,Gupta Adway3ORCID,Patoary Naim4,Sinha Shantanu1,Benard Emmie1,Davis Austin1,Yumigeta Kentaro3,Wu Cheng‐Lun1,Li Han3,Yang Shize1,Esqueda Ivan Sanchez4,Singh Arunima3ORCID,Tongay Sefaattin1ORCID

Affiliation:

1. Materials Science and Engineering School for Engineering of Matter Transport and Energy Arizona State University Tempe 85287 AZ USA

2. Department of Semiconductor Materials Engineering Faculty of Fundamental Problems of Technology Wroclaw University of Science and Technology Wybrzeże Stanisława Wyspiańskiego 27 Wrocław 50‐370 Poland

3. Department of Physics Arizona State University Tempe 85287‐1504 AZ USA

4. Electrical Computer and Energy Engineering Arizona State University Tempe 85281 AZ USA

Abstract

Abstract2D Janus transition metal dichalcogenides (TMDs) have attracted attention due to their emergent properties arising from broken mirror symmetry and self‐driven polarization fields. While it has been proposed that their vdW superlattices hold the key to achieving superior properties in piezoelectricity and photovoltaic, available synthesis has ultimately limited their realization. Here, the first packed vdW nanoscrolls made from Janus TMDs through a simple one‐drop solution technique are reported. The results, including ab initio simulations, show that the Bohr radius difference between the top sulfur and the bottom selenium atoms within Janus (M = Mo, W) results in a permanent compressive surface strain that acts as a nanoscroll formation catalyst after small liquid interaction. Unlike classical 2D layers, the surface strain in Janus TMDs can be engineered from compressive to tensile by placing larger Bohr radius atoms on top (to yield inverted C scrolls. Detailed microscopy studies offer the first insights into their morphology and readily formed Moiré lattices. In contrast, spectroscopy and FETs studies establish their excitonic and device properties and highlight significant differences compared to 2D flat Janus TMDs. These results introduce the first polar Janus TMD nanoscrolls and introduce inherent strain‐driven scrolling dynamics as a catalyst to create superlattices.

Funder

U.S. Department of Energy

National Science Foundation

Division of Materials Research

Division of Civil, Mechanical and Manufacturing Innovation

Office of Science

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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