Biomimetic 4D printing

Nature Materials - Tập 15 Số 4 - Trang 413-418 - 2016
A. Sydney Gladman1, Elisabetta A. Matsumoto1, Ralph G. Nuzzo2, L. Mahadevan1, Jennifer A. Lewis1
1John A. Paulson School of Engineering and Applied Sciences, Harvard University, 29 Oxford Street, Cambridge, Massachusetts 02138, USA
2School of Chemical Sciences, University of Illinois Urbana-Champaign, Urbana, Illinois 61801, USA

Tóm tắt

Từ khóa


Tài liệu tham khảo

Hu, J., Meng, H., Li, G. & Ibekwe, S. I. A review of stimuli-responsive polymers for smart textile applications. Smart Mater. Struct. 21, 053001 (2012).

Felton, S., Tolley, M., Demaine, E., Rus, D. & Wood, R. A method for building self-folding machines. Science 345, 644–646 (2014).

Randall, C. L., Gultepe, E. & Gracias, D. H. Self-folding devices and materials for biomedical applications. Trends Biotechnol. 30, 138–146 (2012).

Fernandes, R. & Gracias, D. H. Self-folding polymeric containers for encapsulation and delivery of drugs. Adv. Drug Deliv. Rev. 64, 1579–1589 (2012).

Kuribayashi-Shigetomi, K., Onoe, H. & Takeuchi, S. Cell origami: self-folding of three-dimensional cell-laden microstructures driven by cell traction force. PLoS ONE 7, e51085 (2012).

Forterre, Y., Skotheim, J., Dumais, J. & Mahadevan, L. How the Venus flytrap snaps. Nature 433, 421–425 (2005).

Awell, B. J., Kriedemann, P. E. & Turnbull, C. G. N. Plants in Action (Macmillan Education AU, 1999).

Reyssat, E. & Mahadevan, L. Hygromorphs: from pine cones to biomimetic bilayers. J. R. Soc. Interface 6, 951–957 (2009).

Armon, S., Efrati, E., Kupferman, R. & Sharon, E. Geometry and mechanics in the opening of chiral seed pods. Science 333, 1726–1730 (2011).

Fratzl, P. & Burgert, I. Actuation systems in plants as prototypes for bioinspired devices. Phil. Trans. R. Soc. A 6, 1541–1557 (2009).

Ge, Q., Qi, H. J. & Dunn, M. L. Active materials by four-dimension printing. Appl. Phys. Lett. 103, 131901 (2013).

Ratna, D. & Karger-Kocsis, J. Recent advances in shape memory polymers and composites: a review. J. Mater. Sci. 43, 254–260 (2008).

Erb, R. M., Sander, J. S., Grisch, R. & Studart, A. E. R. Self-shaping composites with programmable bioinspired microstructures. Nature Commun. 4, 1712 (2012).

Thérien-Aubin, H., Wu, Z. L., Nie, Z. & Kumacheva, E. Multiple shape transformations of composite hydrogel sheets. J. Am. Chem. Soc. 125, 4834–4839 (2013).

Tibbits, S. 4D printing: multi-material shape change. Archit. Des. 84, 116–121 (2014).

Ionov, L. Bioinspired microorigami by self-folding polymer films. Macromol. Chem. Phys. 214, 1178–1183 (2012).

Na, J. H. et al. Programming reversibly self-folding origami with micropatterned photo-crosslinkable polymer trilayers. Adv. Mat. 27, 79–85 (2015).

Liu, Y., Boyles, J. K., Genzer, J. & Dickey, M. D. Self-folding of polymer sheets using local light absorption. Soft Matter 8, 1764–1769 (2012).

Lewis, J. A. Direct ink writing of 3D functional materials. Adv. Funct. Mater. 16, 2193–2204 (2006).

Oytun, F., Kahveci, M. U. & Yagci, Y. Sugar overcomes oxygen inhibition in photoinitiated free radical polymerization. J. Polym. Sci. A 51, 1685–1689 (2013).

Josset, S. et al. Energy consumption of the nanofibrillation of bleached pulp, wheat straw and recycled newspaper through a grinding process. Nord. Pulp Paper Res. J. 29, 167–175 (2014).

Haraguchi, K. & Takehisa, T. Nanocomposite hydrogels: a unique organic-inorganic network structure with extraordinary mechanical, optical, and swelling/de-swelling properties. Adv. Mater. 14, 1120–1124 (2002).

Compton, B. G. & Lewis, J. A. 3D-printing of lightweight cellular composites. Adv. Mater. 26, 5930–5935 (2014).

Smay, J. E., Cesarano, J. & Lewis, J. A. Colloidal inks for directed assembly of 3-D periodic structures. Langmuir 18, 5429–5437 (2002).

Aharoni, H., Sharon, E. & Kupferman, R. Geometry of thin nematic elastomer sheets. Phys. Rev. Lett. 113, 257801 (2014).

Timoshenko, S. Analysis of bi-metal thermostats. J. Opt. Soc. Am. 11, 233–255 (1925).

Modes, C. D., Bhattacharya, K. & Warner, M. Gaussian curvature from flat elastic sheets. Proc. R. Soc. A 467, 1121–1140 (2011).

Abraham, Y. et al. Titled cellulose arrangement as a novel mechanism for hygroscopic coiling in the stork’s bill awn. J. R. Soc. Interface 9, 640–647 (2012).

Liang, H. & Mahadevan, L. The shape of a long leaf. Proc. Natl Acad. Sci. USA 106, 22049–22054 (2009).

Liang, H. & Mahadevan, L. Growth, geometry, and mechanics of a blooming lily. Proc. Natl Acad. Sci. USA 108, 5516–5521 (2011).

van Doorn, W. G. Flower opening and closure: a review. J. Exp. Bot. 54, 1801–1812 (2003).

Haraguchi, K., Li, H.-J., Matsuda, K., Takehisa, T. & Elliott, E. Mechanism of forming organic/inorganic network structures during in-situ free-radical polymerization in PNIPA-clay nanocomposite hydrogels. Macromolecules 38, 3482–3490 (2005).

Yong, X., Kuksenok, O. & Balazs, A. C. Modeling free radical polymerization using dissipative particle dynamics. Polymer 72, 217–225 (2015).

Haraguchi, K., Murata, K. & Takehisa, T. Stimuli-responsive nanocomposite gels and soft nanocomposites consisting of inorganic clays and copolymers with different chemical affinities. Macromolecules 45, 385–391 (2012).