L.B. Kunkels, M. Cruz Saldívar, N.E. Putra, C. Pitta Kruize, S. Panahkhahi, M.A. Leeflang, L.E. Fratila-Apachitei, A.A. Zadpoor, M.J. Mirzaali
{"title":"高性能3D打印水凝胶和聚乳酸的机械互锁软硬界面","authors":"L.B. Kunkels, M. Cruz Saldívar, N.E. Putra, C. Pitta Kruize, S. Panahkhahi, M.A. Leeflang, L.E. Fratila-Apachitei, A.A. Zadpoor, M.J. Mirzaali","doi":"10.1002/admt.202401081","DOIUrl":null,"url":null,"abstract":"<p>High-performance soft–hard interfaces are inherently difficult to fabricate due to the dissimilar mechanical properties of both materials, especially when connecting extremely soft biomaterials, such as hydrogels, to much harder biomaterials, such as rigid polymers. Nevertheless, there is significant clinical demand for synthetic soft–hard interfaces. Here, soft–hard interface geometries are proposed, designed with the aid of computational analyses and fabricated as 3D-printed hydrogel-to-polylactide (PLA) structures. Two primary interlocking geometries (i.e., anti-trapezoidal (AT) and double-hook (DH)) are used to study the envelope of 2.5D geometric interlocking designs, fabricated through hybrid 3D printing, combining pneumatic extrusion with fused deposition modeling. Finite-element analysis, uniaxial tensile tests, and digital image correlation (DIC) are used to characterize the geometries and identify parameters that significantly influence their mechanical performance. These findings reveal significant differences between geometric designs, where DH geometries performed significantly better than AT geometries, exhibiting a 190% increase in the maximum force, <i>F</i><sub>max</sub>, and a 340% increase in the fracture toughness, <i>W</i>. Compared to the control groups (i.e., flat, inset, and 90° interfaces), <i>F</i><sub>max</sub> and <i>W</i> values increased by 500%–990% and 350%–1200%, respectively. The findings of this study can serve as a guideline for the design and fabrication of efficient soft–hard interfaces with performances close to predicted values.</p>","PeriodicalId":7292,"journal":{"name":"Advanced Materials Technologies","volume":"10 9","pages":""},"PeriodicalIF":6.4000,"publicationDate":"2025-01-09","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://onlinelibrary.wiley.com/doi/epdf/10.1002/admt.202401081","citationCount":"0","resultStr":"{\"title\":\"High-Performance 3D Printed Mechanically Interlocked Soft–Hard Interfaces of Hydrogels and Polylactide\",\"authors\":\"L.B. Kunkels, M. Cruz Saldívar, N.E. Putra, C. Pitta Kruize, S. Panahkhahi, M.A. Leeflang, L.E. Fratila-Apachitei, A.A. Zadpoor, M.J. Mirzaali\",\"doi\":\"10.1002/admt.202401081\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>High-performance soft–hard interfaces are inherently difficult to fabricate due to the dissimilar mechanical properties of both materials, especially when connecting extremely soft biomaterials, such as hydrogels, to much harder biomaterials, such as rigid polymers. Nevertheless, there is significant clinical demand for synthetic soft–hard interfaces. Here, soft–hard interface geometries are proposed, designed with the aid of computational analyses and fabricated as 3D-printed hydrogel-to-polylactide (PLA) structures. Two primary interlocking geometries (i.e., anti-trapezoidal (AT) and double-hook (DH)) are used to study the envelope of 2.5D geometric interlocking designs, fabricated through hybrid 3D printing, combining pneumatic extrusion with fused deposition modeling. Finite-element analysis, uniaxial tensile tests, and digital image correlation (DIC) are used to characterize the geometries and identify parameters that significantly influence their mechanical performance. These findings reveal significant differences between geometric designs, where DH geometries performed significantly better than AT geometries, exhibiting a 190% increase in the maximum force, <i>F</i><sub>max</sub>, and a 340% increase in the fracture toughness, <i>W</i>. Compared to the control groups (i.e., flat, inset, and 90° interfaces), <i>F</i><sub>max</sub> and <i>W</i> values increased by 500%–990% and 350%–1200%, respectively. 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High-Performance 3D Printed Mechanically Interlocked Soft–Hard Interfaces of Hydrogels and Polylactide
High-performance soft–hard interfaces are inherently difficult to fabricate due to the dissimilar mechanical properties of both materials, especially when connecting extremely soft biomaterials, such as hydrogels, to much harder biomaterials, such as rigid polymers. Nevertheless, there is significant clinical demand for synthetic soft–hard interfaces. Here, soft–hard interface geometries are proposed, designed with the aid of computational analyses and fabricated as 3D-printed hydrogel-to-polylactide (PLA) structures. Two primary interlocking geometries (i.e., anti-trapezoidal (AT) and double-hook (DH)) are used to study the envelope of 2.5D geometric interlocking designs, fabricated through hybrid 3D printing, combining pneumatic extrusion with fused deposition modeling. Finite-element analysis, uniaxial tensile tests, and digital image correlation (DIC) are used to characterize the geometries and identify parameters that significantly influence their mechanical performance. These findings reveal significant differences between geometric designs, where DH geometries performed significantly better than AT geometries, exhibiting a 190% increase in the maximum force, Fmax, and a 340% increase in the fracture toughness, W. Compared to the control groups (i.e., flat, inset, and 90° interfaces), Fmax and W values increased by 500%–990% and 350%–1200%, respectively. The findings of this study can serve as a guideline for the design and fabrication of efficient soft–hard interfaces with performances close to predicted values.
期刊介绍:
Advanced Materials Technologies Advanced Materials Technologies is the new home for all technology-related materials applications research, with particular focus on advanced device design, fabrication and integration, as well as new technologies based on novel materials. It bridges the gap between fundamental laboratory research and industry.