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Hydrogels are candidate building blocks in a wide range of biomaterial applications including soft and biohybrid robotics, microfluidics, and tissue engineering. Recent advances in embedded 3D printing have broadened the design space accessible with hydrogel additive manufacturing. Specifically, the Freeform Reversible Embedding of Suspended Hydrogels (FRESH) technique has enabled the fabrication of complex 3D structures using extremely soft hydrogels, e.g., alginate and collagen, by assembling hydrogels within a fugitive support bath. However, the low structural rigidity of FRESH printed hydrogels limits their applications, especially those that require operation in nonaqueous environments. In this study, we demonstrated long-fiber embedded hydrogel 3Dmore »Free, publicly-accessible full text available December 1, 2022
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Webster-Wood, Victoria A. ; Gill, Jeffrey P. ; Thomas, Peter J. ; Chiel, Hillel J. ( , Biological Cybernetics)
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Webster-Wood, Victoria A. ; Gill, Jeffrey P. ; Thomas, Peter J. ; Chiel, Hillel J ( , Biological cybernetics)