Significant progress has been made in the design of smart fibers toward achieving improved efficacy in tissue regeneration. While electrospun fibers can be engineered with shape memory capability, both the fiber structure and applied shape-programming parameters are the determinants of final performance in applications. Herein, we report a comparison study on the shape memory responses compared between electrospun random and aligned fibers by varying the programming temperature and the deforming strain . A PLLA-PHBV (6:4 mass ratio) polymer blend was first electrospun into random and aligned fibrous mat forms; thereafter, the effects of applying specific (37°C and 46°C) and (30%, 50%, and 100%) on the morphological change, shape recovery efficiency, and switching temperature of the two types of fibrous structures were examined under stress-free condition, while the maximum recovery stress was determined under constrained recovery condition. It was identified that the applied had less impact on fiber morphology, but increasing gave rise to attenuation in fiber diameters and bettering in fiber orientation, especially for random fibers. The efficiency of shape recovery was found to correlate with both the applied and , with the aligned fibers exhibiting relatively higher recovery ability than the random counterpart. Moreover, was found to be close to , thereby revealing a temperature memory effect in the PLLA-PHBV fibers, with the aligned fibers showing more proximity, while the generated was -dependent and 2.1-3.4 folds stronger for the aligned one in comparison with the random counterpart. Overall, the aligned fibers generally demonstrated better shape memory properties, which can be attributed to the macroscopic structural orderliness and increased molecular orientation and crystallinity imparted during the shape-programming process. Finally, the feasibility of using the shape memory effect to enable a mechanoactive fibrous substrate for regulating osteogenic differentiation of stem cells was demonstrated with the use of aligned fibers.
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http://dx.doi.org/10.3389/fbioe.2023.1130315 | DOI Listing |
Acta Biomater
January 2025
Department of Biomedical Engineering, Lund University, Box 118, 221 00 Lund, Sweden.
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Faculty of Food Technology, Technical University of Moldova, 168, Stefan cel Mare bd, MD-2004 Chisinau, Moldova.
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January 2025
Tickle College of Engineering, University of Tennessee, Knoxville, TN 37996, USA.
Pultruded carbon fiber-reinforced composites are attractive to the wind energy industry due to the rapid production of highly aligned unidirectional composites with enhanced fiber volume fractions and increased specific strength and stiffness. However, high volume carbon fiber manufacturing remains cost-prohibitive. This study investigates the feasibility of a pultruded low-cost textile carbon fiber-reinforced epoxy composite as a promising material in spar cap production was undertaken based on mechanical response to four-point flexure loading.
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Department of Energy and Power Engineering, North University of China, Taiyuan 038507, China.
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View Article and Find Full Text PDFAngew Chem Int Ed Engl
December 2024
State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai, 201620, China.
The escalating emissions of anthropogenic carbon dioxide (CO) and the pervasive issue of nondegradable plastic pollution underscore dual urgent challenges in pursuit of a sustainable society. Achieving such sustainability in the plastic industry, while effectively addressing these environmental concerns, necessitates the development and implementation of innovative strategies for the synthesis of biodegradable polymers utilizing CO as feedstocks. The technologies not only facilitate the mitigation of elevated atmospheric CO concentrations but also introduce a renewable carbon resource for polymer manufacturing.
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