4D Printing Nanocomposite Hydrogel Based on PNIPAM and Prussian Blue Nanoparticles Using Stereolithography

被引:4
作者
Pelluau, Tristan [1 ]
Brossier, Thomas [1 ]
Habib, Michel [1 ]
Sene, Saad [1 ]
Felix, Gautier [1 ]
Larionova, Joulia [1 ]
Blanquer, Sebastien [1 ]
Guari, Yannick [1 ]
机构
[1] Univ Montpellier, ICGM, CNRS, ENSCM, 1919 Route Mende, F-34000 Montpellier, France
关键词
4D printing; light induced polymerization; nanoparticles; poly(N-isopropylacrylamide); Prussian blue; stereolithography; thermo-responsive hydrogels; MECHANICAL-PROPERTIES; COMPOSITE HYDROGELS; ANALOGS; SIZE;
D O I
10.1002/mame.202300305
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The potential of photoactive Prussian blue nanoparticles dispersed in thermo-responsive PNIPAM hydrogels in 4D printing using a stereolithography is investigated with digital light processing. The proportion of Prussian blue nanoparticles used in the resin is chosen to deliver a significant photothermal effect providing a heating above the volume phase transition temperature of the final nanocomposite hydrogels; while, giving only a limited effect on light scattering during the 3D printing process. Four formulations with various amounts of Prussian blue nanoparticles are used to print 3D structures with different shapes, such as Aztec pyramids, cylinders, gyroid porous cubes, and porous films. The shrinkage effect triggered by light irradiation at 808 nm on the as-obtained nanocomposite hydrogels is demonstrated through the delivery of a representative molecule fluorescein and a triggered 4D shape-morphing effect. Nanocomposite hydrogels associating photoactive Prussian blue (PB) nanoparticles with a thermo-responsive matrix, poly(N-isopropylacrylamide are elaborated via a digital litography processing . The hydrogel-based objects are subjected, on request under Near InfraRed irradiation, to a 4D shape transformation in the solid state or to the release of fluorescein in solution.image
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页数:10
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  • [31] Poly(N-isopropylacrylamide)-based thermoresponsive surfaces provide new types of biomedical applications
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    Yamato, Masayuki
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    Okano, Teruo
    [J]. BIOMATERIALS, 2018, 153 : 27 - 48
  • [32] Complex shape deformations of homogeneous poly(N-isopropylacrylamide)/graphene oxide hydrogels programmed by local NIR irradiation
    Peng, Xin
    Liu, Tianqi
    Jiao, Chen
    Wu, Yuqing
    Chen, Nan
    Wang, Huiliang
    [J]. JOURNAL OF MATERIALS CHEMISTRY B, 2017, 5 (39) : 7997 - 8003
  • [33] Hydrogel Production Platform with Dynamic Movement Using Photo-Crosslinkable/Temperature Reversible Chitosan Polymer and Stereolithography 4D Printing Technology
    Seo, Jeong Wook
    Shin, Su Ryon
    Park, Yeon Joo
    Bae, Hojae
    [J]. TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2020, 17 (04) : 423 - 431
  • [34] Prussian blue- and Prussian blue analogue-derived materials: progress and prospects for electrochemical energy conversion
    Singh, Baghendra
    Indra, Arindam
    [J]. MATERIALS TODAY ENERGY, 2020, 16
  • [35] The effect of the printing temperature on 4D DLP printed pNIPAM hydrogels
    Solis, Daphene Marques
    Czekanski, Aleksander
    [J]. SOFT MATTER, 2022, 18 (17) : 3422 - 3429
  • [36] Structure analysis of poly(N-isopropylacrylamide) using near-infrared spectroscopy and generalized two-dimensional correlation infrared spectroscopy
    Sun, Bingjie
    Lin, Yinan
    Wu, Peiyi
    [J]. APPLIED SPECTROSCOPY, 2007, 61 (07) : 765 - 771
  • [37] Thin films of coordination polymer magnets
    Talham, Daniel R.
    Meisel, Mark W.
    [J]. CHEMICAL SOCIETY REVIEWS, 2011, 40 (06) : 3356 - 3365
  • [38] 4D Printing of Hydrogels: Innovation in Material Design and Emerging Smart Systems for Drug Delivery
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    Dutta, Naba Kumar
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  • [39] Vaucher S, 2000, ANGEW CHEM INT EDIT, V39, P1793, DOI 10.1002/(SICI)1521-3773(20000515)39:10<1793::AID-ANIE1793>3.0.CO
  • [40] 2-Y