TY - JOUR
T1 - 4D Printing of Seed Capsule-Inspired Hygro-Responsive Structures via Liquid Crystal Templating-Assisted Vat Photopolymerization
AU - Tang, Tengteng
AU - Alfarhan, Saleh
AU - Jin, Kailong
AU - Li, Xiangjia
N1 - Funding Information:
The authors acknowledge ASU startup funding, ASU FSE Strategic Interest Seed Funding, National Science Foundation (NSF Grant No. CMMI‐2114119). The authors also thank the ASU core research facilities for the use of SEM electron microprobe analyzer, and Prof. Kailong Jin's Lab for the use of the rheometer.
Publisher Copyright:
© 2022 Wiley-VCH GmbH.
PY - 2023/1/26
Y1 - 2023/1/26
N2 - The creatures in nature exhibit dynamic responses to environmental stimuli through their hierarchical architectures. Benefiting from gradient porous structures, Delosperma nakurense opens its protective valves of the seed capsules when hydrated with liquid water, increasing the likelihood that seeds are dispersed under conditions favorable to germination. Here, a versatile 4D printing technology, namely liquid crystal templating-assisted vat photopolymerization (LCT-VPP), which can fabricate bioinspired porous structures with hygro-responsive capabilities by utilizing photopolymerization induced phase separation (PIPS) and liquid crystals (LCs) electro-alignment is reported. PIPS within the LCs/nanofiller composites leads to the formation of submicrometer gradient porous structures after extracting nonreactive LCs. The electric field enables the programmable alignment of LCs, which in turn elongates the porous structures and aligns nanofillers. In addition, the programmable arranged nanofillers by the templated LCs enhance the degree of deformation and thus the resulting composites exhibit high shape control accuracy, fast dynamic response, and high reliability. This study opens a perspective for designing bioinspired smart materials with the special spatial distribution of porous structures. The results reported here can give rise to various potential applications in soft robots, smart anticounterfeiting devices, flexible sensors, and ultrafiltration membrane.
AB - The creatures in nature exhibit dynamic responses to environmental stimuli through their hierarchical architectures. Benefiting from gradient porous structures, Delosperma nakurense opens its protective valves of the seed capsules when hydrated with liquid water, increasing the likelihood that seeds are dispersed under conditions favorable to germination. Here, a versatile 4D printing technology, namely liquid crystal templating-assisted vat photopolymerization (LCT-VPP), which can fabricate bioinspired porous structures with hygro-responsive capabilities by utilizing photopolymerization induced phase separation (PIPS) and liquid crystals (LCs) electro-alignment is reported. PIPS within the LCs/nanofiller composites leads to the formation of submicrometer gradient porous structures after extracting nonreactive LCs. The electric field enables the programmable alignment of LCs, which in turn elongates the porous structures and aligns nanofillers. In addition, the programmable arranged nanofillers by the templated LCs enhance the degree of deformation and thus the resulting composites exhibit high shape control accuracy, fast dynamic response, and high reliability. This study opens a perspective for designing bioinspired smart materials with the special spatial distribution of porous structures. The results reported here can give rise to various potential applications in soft robots, smart anticounterfeiting devices, flexible sensors, and ultrafiltration membrane.
KW - 4D printing
KW - anisotropic porous structures
KW - hygro-responsive actuation
KW - liquid crystal templating
KW - vat photopolymerization
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U2 - 10.1002/adfm.202211602
DO - 10.1002/adfm.202211602
M3 - Article
AN - SCOPUS:85142126181
SN - 1616-301X
VL - 33
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 5
M1 - 2211602
ER -