4.8 Article

Artificial Helical Screws of 2D Materials with Archimedean Spiral Arrangement

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 33, Issue 17, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202212997

Keywords

2D materials; chirality; helix formation; perversion; self-assembly

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This study presents a method for the macroscopic self-assembly of 2D materials into helical screws. The helical screws consist of multiple helices and perversions formed through the spontaneous rotation of 1D fiber assembly of 2D materials. The study also investigates the influence of spontaneous helix formation on the properties of the assembled fibers.
Helix structures, which are frequently observed in nature, act as versatile structural templates for complex functionalities with asymmetry and anisotropy. However, atomically thin 2D materials, including graphene, transition metal dichalcogenides (TMDs), and MXenes, do not have inherent chirality in their planar geometry and cannot easily form such a structure. This study presents the macroscopic self-assembly of 2D materials for helical screws with an Archimedean spiral arrangement. The naturally triggered spontaneous rotation upon the 1D fiber assembly of 2D materials forms helical screws consisting of multiple helices and perversions. For a clear understanding of the morphological evolution of helical screws, variations in the helical pitch and angle are systematically analyzed considering thermodynamic and kinetic conditions. Subsequently, the influence of spontaneous helix formation on the properties of the 2D assembled fibers is investigated in terms of the solvent-driven actuator performance and electrical and electrothermal properties. The suggested approach provides a new perspective on the directed self-assembly of inherently achiral 2D materials toward chiral helix formation.

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