US 3917526A
· Jennings
· 1975
[cited by applicant]
US 4582756A
· Niinuma et al.
· 1986
[cited by applicant]
US 4906518A
· Inabata
· 1990
[cited by applicant]
US 8097336B2
· Owens
· 2012
[cited by applicant]
US 8883871B2
· Wilson et al.
· 2014
[cited by applicant]
US 9340654B2
· Silverstein et al.
· 2016
[cited by applicant]
US 20040126322A1
· Bichon et al.
· 2004
[cited by applicant]
US 20190329491A1
· Yu
· 2019
[cited by examiner]
US 20200190345A1
· Mabe et al.
· 2020
[cited by applicant]
GB 990235A
· 1965
[cited by applicant]
WO 2006086011A2
· 2006
[cited by applicant]
WO 2006136153A1
· 2006
[cited by applicant]
WO 2016149032A1
· 2016
[cited by applicant]
WO 2016187097A1
· 2016
[cited by applicant]
WO 2017086923A1
· 2017
[cited by applicant]
“Comparison of compressive properties of layered syntactic foams having gradient in microballoon volume fraction and wall thickness,” Gupta et al., Materials Science and Engineering A 427 (2006) 331-342. (Year: 2006).
[cited by examiner]
Notice of Allowance from U.S. Appl. No. 16/610,215, dated Oct. 20, 2023.
[cited by applicant]
Perez et al., U.S. Appl. No. 16/368,725, filed Mar. 28, 2019.
[cited by applicant]
Perez et al., U.S. Appl. No. 17/499,641, filed Oct. 12, 2021.
[cited by applicant]
Nguyen et al., U.S. Appl. No. 16/805,494, filed filed Feb. 28, 2020.
[cited by applicant]
Mabe et al., U.S. Appl. No. 17/232,521, filed Apr. 16, 2021.
[cited by applicant]
Lenhardt et al., U.S. Appl. No. 17/075,549, filed Oct. 20, 2020.
[cited by applicant]
Lerebours et al., “The relationship between porosity and specific surface in human cortical bone is subject specific,” Bone, vol. 72, 2015, pp. 109-117.
[cited by applicant]
Drake, E., “Characterization of Viscoelastic Materials Through an Active Mixer by Direct-Ink Writing,” Thesis, Oklahoma State University, May 2017, 117 pages.
[cited by applicant]
Wu et al., “3D Printed Silicones with Shape Memory,” Scientific Reports, Jul. 2017, 6 pages.
[cited by applicant]
Shi et al., “Design and fabrication of graduated porous Ti-based alloy implants for biomedical applications,” Journal of Alloys and Compounds, vol. 728, 2017, pp. 1043-1048.
[cited by applicant]
Onal et al., “Mechanical Properties and In Vitro Behavior of Additively Manufactured and Functionally Graded Ti6Al4V Porous Scaffolds,” Metals, vol. 8, 2018, pp. 1-21.
[cited by applicant]
Ortega et al., “Active Mixing of Disparate Inks for Multimaterial 3D Printing,” Advanced Materials Technologies, vol. 4, 2019, 13 pages.
[cited by applicant]
Chen et al., “Porous Scaffold Design for Additive Manufacturing in Orthopedics: A Review,” Frontiers in Bioengineering and Biotechnology, vol. 8, Jun. 2020, pp. 1-20.
[cited by applicant]
Shalchy et al., “Hierarchical porosity in additively manufactured bioengineering scaffolds: Fabrication & characterisation,” Journal of the Mechanical Behavior of Biomedical Materials, vol. 110, 2020, 12 pages.
[cited by applicant]
Smay et al., “Collodial Inks for Directed Assembly of 3-D Periodic Structures,” Langmuir, vol. 18, No. 14, 2002, pp. 5429-5437.
[cited by applicant]
Beloshenko et al., “Shape-Memory Effect in Polymer Composites with a Compactible Filler,” Mechanics of Composite Materials, vol. 39, No. 3, 2003, pp. 255-264.
[cited by applicant]
Gratson et al., “Phase Behavior and Rheological Properties of Polyelectrolyte Inks for Direct-Write Assembly,” Langmuir, vol. 21, No. 01, 2005, pp. 457-464.
[cited by applicant]
Lewis, J., “Direct Ink Writing of 3D Functional Materials,” Advanced Functional Materials, vol. 16, 2006, pp. 2193-2204.
[cited by applicant]
Therriailt et al., “Fugitive Inks for Direct-Write Assembly of Three-Dimensional Microvascular Networks,” Advanced Materials, vol. 17, No. 4, Feb. 23, 2005, pp. 395-399.
[cited by applicant]
Liu et al., “Review of progress in shape-memory polymers,” Journal of Materials Chemistry, vol. 17, Mar. 19, 2007, pp. 1543-1558.
[cited by applicant]
Small et al., “Biomedical applications of thermally activated shape memory polymers,” Journal of Materials Chemistry, vol. 20, Mar. 2, 2010, pp. 3356-3366.
[cited by applicant]
Cai et al., “Direct-writing construction of layered meshes from nanoparticles-vaseline composite inks: rheological properties and structures,” Applied Physics A: Materials and Science Processing, vol. 102, 2011, pp. 501…
[cited by applicant]
Hearon et al., “Post-Polymerization Crosslinked Polyurethane Shape Memory Polymers,” Journal of Applied Polymer Science, vol. 121, Feb. 17, 2011, pp. 144-153.
[cited by applicant]
Singhal et al., “Ultra Low Density and Highly Crosslinked Biocompatible Shape Memory Polyurethane Foams,” Journal of Polymer Science Part B: Polymer Physics, vol. 50, No. 10, May 15, 2012. pp. 1-27.
[cited by applicant]
Song et al., “Design and characterization of biocompatible shape memory polymer (SMP) blend foams with a dynamic porous structure,” Polymer, vol. 56, 2015, pp. 82-92.
[cited by applicant]
Damouny et al., “Hydrogel-filled, semi-crystalline, nanoparticle-crosslinked, porous polymers from emulsion templating: Structure, properties, and shape memory,” Polymer, vol. 82, 2016, pp. 262-273.
[cited by applicant]
Wang et al., “Recent developments in shape memory polymer nanocomposites: Actuation methods and mechanisms,” Coordination Chemistry Reviews, vol. 320-321, Mar. 25, 2016, pp. 38-52.
[cited by applicant]
Maiti et al., “3D printed cellular solid outperforms traditional stochastic foam in long-term mechanical response,” Scientific Reports, vol. 6:24871, Apr. 27, 2016, pp. 1-8.
[cited by applicant]
Duoss et al., “Three-Dimensional Printing of Elastomeric, Cellular Architectures with Negative Stiffness,” Advanced Functional Materials, vol. 24, 2014, pp. 4905-4913.
[cited by applicant]
Hearon et al., “Porous Shape-Memory Polymers,” Polymer Reviews, vol. 53, 2013, pp. 41-75.
[cited by applicant]
Singhal et al., “Ultra Low Density Amorphous Shape Memory polymer Foams,” American Chemical Society, Mar. 19, 2012, 4 pages.
[cited by applicant]
Therriault et al., “Rheological Behavior of Fugitive Organic Inks for Direct-Write Assembly,” Applied Rheology, vol. 17, Issue. 01, 2007, pp. 10112:1-10112:8.
[cited by applicant]
Zhang et al., “Mechanical, thermal insulation, thermal resistance and acoustic absorption properties of geopolymer foam concrete (GFC),” Cement and Concrete Composites, vol. 62, 2015, 35 pages, retrieved from http://epr…
[cited by applicant]
Rodriguez et al., “In vivo tissue response following implantation of shape memory polyurethane foam in a porcine aneurysm,” Journal of Biomedical Materials Research A, vol. 102. No. 5, May 2014, pp. 1-22.
[cited by applicant]
Nam et al., “A Novel Fabrication Method of Macroporous Biodegradable Polymer Scaffolds Using Gas Foaming Salt as a Porogen Additive,” John Wiley & Sons Inc., Journal of Biomedical Materials Research, vol. 53, 2000, pp. …
[cited by applicant]
Muth et al., “Embedded 3D Printing of Strain Sensors within Highly Stretchable Elastomers,” Advanced Materials, vol. 26, 2014, pp. 6307-6312.
[cited by applicant]
Wehner et al., “An integrated design and fabrication strategy for entirely soft, autonomous robots,” Nature, vol. 536, Aug. 25, 2016, pp. 451-455.
[cited by applicant]
Gladman et al., “Biomimetic 4D printing,” Nature Materials, vol. 15, Apr. 2016, pp. 413-418.
[cited by applicant]
Javey et al., “Layer-by Layer Assembly of Nanowires for Three-Dimensional, Multifunctional Electronics,” Nanoletters, vol. 07, No. 03, 2007, pp. 773-777.
[cited by applicant]
Kim et al., “Stretchable and Foldable Silicon Integrated Circuits,” Science, vol. 320, Apr. 25, 2008, pp. 507-511.
[cited by applicant]
Liu et al., “Three-dimensional photonic metamaterials at optical frequencies,” Nature Materials, vol. 07, Jan. 2008, pp. 31-37.
[cited by applicant]
Ge et al., “Multimaterial 4D Printing with Tailorable Shape Memory Polymers,” Scientific Reports, vol. 6:31110, Aug. 8, 2016, pp. 1-11.
[cited by applicant]
Khoo et al., “3D printing of smart materials: A review on recent progresses in 4D printing,” Virtual and Physical Prototyping, vol. 10, No. 03, 2015, pp. 103-122.
[cited by applicant]
Jang et al., “Fabrication and deformation of three-dimensional hollow ceramic nanostructures,” Nature Materials, vol. 12, Oct. 2013, pp. 893-898.
[cited by applicant]
Meza et al., “Strong, lightweight, and recoverable three-dimensional ceramic nanolattices,” Science, vol. 345, Issue. 6202, Sep. 12, 2014, pp. 1322-1326.
[cited by applicant]
Bauer et al., “High-strength cellular ceramic composites with 3D microarchitecture,” Proceedings of the National Academy of Sciences, vol. 111, No. 07, Feb. 18, 2014, pp. 2453-2458.
[cited by applicant]
Zheng et al., “Ultralight, Ultrastiff Mechanical Metamaterials,” Science, vol. 344, Issue 6190, Jun. 20, 2014, pp. 1373-1377.
[cited by applicant]
Meza et al., “Resilient 3D hierarchical architected metamaterials,” Proceedings of the National Academy of Sciences: Early Edition, Sep. 2015, pp. 1-6.
[cited by applicant]
Zhu et al., “Catenary shape evolution of spanning structures in direct-write assembly of colloidal gels,” Journal of Materials Processing Technology, vol. 212, 2012, pp. 727-733.
[cited by applicant]
Lewis et al., “Direct writing in three dimensions,” Materials Today, Jul.-Aug. 2004, pp. 32-39.
[cited by applicant]
Wilson et al., “Shape memory polymers based on uniform aliphatic urethane networks,” Journal of Applied Polymer Science, Jan. 23, 2007, 36 pages, retrieved from https://www.semanticscholar.org/paper/Shape-memory-polymer…
[cited by applicant]
Wagner et al., “Shear thickening in colloidal dispersions,” Physics Today, vol. 62, No. 10, Oct. 2009, pp. 27-32.
[cited by applicant]
Lewis et al., “Well-Defined Shape-Memory Networks with High Elastic Energy Capacity,” Macromolecules, vol. 48, Jul. 15, 2015, pp. 4918-4926.
[cited by applicant]
Wu et al., U.S. Appl. No. 16/610,215, filed Nov. 1, 2019.
[cited by applicant]
Zheng et al., “Multiscale metallic metamaterials,” Nature Materials, 2016, pp. 1-26.
[cited by applicant]
International Search Report and Written Opinion from PCT Application No. PCT/US2018/039857, dated Nov. 5, 2018.
[cited by applicant]
International Preliminary Report from PCT Application No. PCT/US2018/039857, dated Jan. 9, 2020.
[cited by applicant]
Lendlein et al., “Shape-Memory Effect,” Angewandte Chemie International Ed., vol. 41, 2002, pp. 2034-2057.
[cited by applicant]
Ohki et al., “Mechanical and shape memory behavior of composites with shape memory polymer,” Composites: Part A 35, 2004, pp. 1065-1073.
[cited by applicant]
Lendlein et al., “Biodegradable, Elastic Shape-Memory Polymers for Potential Biomedical Applications,” Science, vol. 296, May 31, 2002, pp. 1673-1676.
[cited by applicant]
Li et al., “Thermomechanical characterization of a shape memory polymer based self-repairing syntactic foam,” Polymer, vol. 51, 2010, pp. 755-762.
[cited by applicant]
Shimazaki et al., “Shock-absorption properties of functionally graded EVA laminates for footwear design,” Polymer Testing, vol. 54, 2016, pp. 98-103.
[cited by applicant]
Mabe et al, U.S. Appl. No. 16/659,025, filed Oct. 21, 2019.
[cited by applicant]
Durban et al., U.S. Appl. No. 15/721,528, filed Sep. 29, 2017.
[cited by applicant]
Non-Final Office Action from U.S. Appl. No. 16/610,215, dated Mar. 1, 2023.
[cited by applicant]