Access the full text.
Sign up today, get DeepDyve free for 14 days.
S. Hollister (2005)
Porous scaffold design for tissue engineeringNature Materials, 4
J. Klein, Klaus‐Dieter Conrad (1980)
Characterisation of poly(acrylamide) in solutionMacromolecular Chemistry and Physics, 181
Oto Wichterle, D. Lím (1960)
Hydrophilic Gels for Biological UseNature, 185
R. Barry, P. Wiltzius (2006)
Humidity-sensing inverse opal hydrogels.Langmuir : the ACS journal of surfaces and colloids, 22 3
Jungwoo Lee, Meghan Cuddihy, N. Kotov (2008)
Three-dimensional cell culture matrices: state of the art.Tissue engineering. Part B, Reviews, 14 1
R. Moon, M. Hoffman, J. Hilden, K. Bowman, K. Trumble, J. Rödel (2002)
Weight Function Analysis on the R‐Curve Behavior of Multilayered Alumina–Zirconia CompositesJournal of the American Ceramic Society, 85
T. Schwartz (1980)
Dynamic dimensions in the polyacrylamide-water systemPolymer, 21
G. Gratson, F. García-Santamaría, V. Lousse, M. Xu, S. Fan, J. Lewis, P. Braun (2006)
Direct‐Write Assembly of Three‐Dimensional Photonic Crystals: Conversion of Polymer Scaffolds to Silicon Hollow‐Woodpile StructuresAdvanced Materials, 18
L. Griffith, G. Naughton (2002)
Tissue Engineering--Current Challenges and Expanding OpportunitiesScience, 295
R. Pelham, Yu-li Wang (1997)
Cell locomotion and focal adhesions are regulated by substrate flexibility.Proceedings of the National Academy of Sciences of the United States of America, 94 25
Shuhui Wu, R. Shanks (2003)
Conformation of polyacrylamide in aqueous solution with interactive additives and cosolventsJournal of Applied Polymer Science, 89
P. Tayalia, C. Mendonca, T. Baldacchini, D. Mooney, E. Mazur (2008)
3D Cell‐Migration Studies using Two‐Photon Engineered Polymer ScaffoldsAdvanced Materials, 20
Sourabh Ghosh, S. Parker, Xianyan Wang, D. Kaplan, J. Lewis (2008)
Direct‐Write Assembly of Microperiodic Silk Fibroin Scaffolds for Tissue Engineering ApplicationsAdvanced Functional Materials, 18
Shuhui Wu, R. Shanks (2004)
Solubility study of polyacrylamide in polar solventsJournal of Applied Polymer Science, 93
G. Gratson, Mingjie Xu, J. Lewis (2004)
Microperiodic structures: Direct writing of three-dimensional websNature, 428
P. Calvert (2001)
Inkjet Printing for Materials and DevicesChemistry of Materials, 13
Gazell Mapili, Yi Lu, Shaochen Chen, K. Roy (2005)
Laser-layered microfabrication of spatially patterned functionalized tissue-engineering scaffolds.Journal of biomedical materials research. Part B, Applied biomaterials, 75 2
E. Duoss, M. Twardowski, J. Lewis (2007)
Sol‐Gel Inks for Direct‐Write Assembly of Functional OxidesAdvanced Materials, 19
M. Deubel, G. Freymann, M. Wegener, S. Pereira, K. Busch, C. Soukoulis (2004)
Direct laser writing of three-dimensional photonic-crystal templates for telecommunicationsNature Materials, 3
K. Lewandowska (2007)
Comparative studies of rheological properties of polyacrylamide and partially hydrolyzed polyacrylamide solutionsJournal of Applied Polymer Science, 103
Yuanfang Liu, Shaopeng Wang, Jungwoo Lee, N. Kotov (2005)
A floating self-assembly route to colloidal crystal templates for 3D cell scaffoldsChemistry of Materials, 17
Shuguang Zhang, Lin Yan, M. Altman, M. Lässle, H. Nugent, F. Frankel, D. Lauffenburger, G. Whitesides, Alexander Rich (1999)
Biological surface engineering: a simple system for cell pattern formation.Biomaterials, 20 13
É. Pelletier, C. Viebke, J. Meadows, P. Williams (2003)
Dilute Polyacrylamide Solutions under Uniaxial Extensional FlowLangmuir, 19
M. Campbell, D. Sharp, M. Harrison, M. Harrison, R. Denning, A. Turberfield (2000)
Fabrication of photonic crystals for the visible spectrum by holographic lithographyNature, 404
Y. Heo, R. Larson (2005)
The scaling of zero-shear viscosities of semidilute polymer solutions with concentrationJournal of Rheology, 49
W. Teng, M. Edirisinghe, J. Evans (2005)
Optimization of Dispersion and Viscosity of a Ceramic Jet Printing InkJournal of the American Ceramic Society, 80
Jooho Moon, Jason Grau, V. Knezevic, M. Cima, E. Sachs (2004)
Ink-jet printing of binders for ceramic componentsJournal of the American Ceramic Society, 85
Y. Lee, P. Braun (2003)
Tunable Inverse Opal Hydrogel pH SensorsAdvanced Materials, 15
A. Bol’shakov, D. Kiryukhin (2007)
Spontaneous polymerization of acrylamide in glycerolPolymer Science Series A, 49
J. Smay, G. Gratson, R. Shepherd, J. Cesarano, J. Lewis (2002)
Directed colloidal assembly of 3D periodic structuresAdvanced Materials, 14
T. He, R. Porter (1992)
Molecular geometry and chain entanglement: parameters for the tube modelDie Makromolekulare Chemie, Theory and Simulations, 1
J. Holtz, S. Asher (1997)
Polymerized colloidal crystal hydrogel films as intelligent chemical sensing materialsNature, 389
G. Vozzi, Christopher Flaim, A. Ahluwalia, S. Bhatia (2003)
Fabrication of PLGA scaffolds using soft lithography and microsyringe deposition.Biomaterials, 24 14
J. Lee, P. Lan, Byung Kim, G. Lim, D. Cho (2008)
Fabrication and characteristic analysis of a poly(propylene fumarate) scaffold using micro-stereolithography technology.Journal of biomedical materials research. Part B, Applied biomaterials, 87 1
Ji‐Hwan Kang, J. Moon, Seung-Kon Lee, Sung‐Gyu Park, S. Jang, Shu Yang, Seung‐Man Yang (2008)
Thermoresponsive Hydrogel Photonic Crystals by Three‐Dimensional Holographic LithographyAdvanced Materials, 20
K. Toohey, N. Sottos, J. Lewis, Jeffrey Moore, S. White (2007)
Self-healing materials with microvascular networks.Nature materials, 6 8
P. Russo, Sommay Siripanyo, M. Saunders, F. Karasz (1986)
Observation of a porous gel structure in poly(p-phenylenebenzobisthiazole)/97% sulfuric acidMacromolecules, 19
Van Osch, J. Perelaer, de Laat, U. Schubert (2008)
Inkjet Printing of Narrow Conductive Tracks on Untreated Polymeric SubstratesAdvanced Materials, 20
E. Sachs, M. Cima, P. Williams, D. Brancazio, J. Cornie (1992)
Three Dimensional Printing: Rapid Tooling and Prototypes Directly from a CAD ModelJournal of Engineering for Industry, 114
Planar and 3D hydrogel scaffolds are patterned via direct‐write assembly of hydrogel‐based inks. Through simultaneous ink writing and UV polymerization, both 1D and 3D microperiodic scaffolds are created. 3T3 murine fibroblasts are seeded onto the scaffolds and their process development is observed using fluorescence microscopy.
Advanced Materials – Wiley
Published: Jun 19, 2009
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.