Alignment switching in 3D-printed smectic liquid crystal elastomers
Переключение ориентировки в 3D-печатных смектических эластомерах жидких кристаллов
2026-07-10
SCID: 54.1/b4dzhr6k
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alignment switchingdirect-ink-writingshear- and temperature-dependent orientationsmectic layer collapsesmectic liquid crystal elastomers
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Abstract (AI)
Extrusion-based additive manufacturing has emerged as a powerful platform for designing shape-morphing materials through controlled orientation. However, existing approaches primarily rely on a single mode of flow-induced alignment, limiting orientation programmability. Herein, we present a direct-ink-writing approach for smectic liquid crystal elastics that exploits two distinct alignment modes within a single ink. The smectic ink exhibits shear- and temperature-dependent orientation switching, enabling molecular alignment either perpendicular or parallel to the print direction. Combined rheological, X-ray, and molecular dynamics analyses reveal that this alignment inversion arises from the preservation or collapse of smectic layers under flow. This reversible switching encodes both contractile and elongational actuation within individual filaments, greatly expanding the design freedom of printed liquid crystal elastomers. We demonstrate 2D and 3D structures with diverse programmed shape transformations, highlighting the potential of this platform for adaptive soft actuators and architected functional materials.
Key Findings
1
Direct-ink-writing method for smectic liquid crystal elastomers (LCEs) exploits two distinct flow-induced alignment modes within a single ink.
2
Printed 2D and 3D structures exhibit diverse programmed shape transformations, expanding design freedom for adaptive soft actuators and architected functional materials.
3
Reversible alignment switching enables encoding of both contractile and elongational actuation within individual printed filaments.
4
Rheology, X-ray, and molecular dynamics indicate alignment inversion is caused by preservation or collapse of smectic layers under flow.
5
Smectic ink shows shear- and temperature-dependent orientation switching, allowing molecular alignment either perpendicular or parallel to the print direction.
Research Object
3D-printed smectic liquid crystal elastomer filaments produced by direct-ink-writing
Research Subject
Shear- and temperature-dependent alignment switching (perpendicular vs parallel to print direction) due to preservation or collapse of smectic layers under flow, and resulting reversible contractile vs elongational actuation programmable within individual printed filaments
Publication Details
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2026-07-10
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