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Microstructure and mechanical properties make the membranes a good candidate for ophthalmological implants.
Ironically, these superior mechanical properties make the sandwich composites "excellent" noise radiators.
These mechanical properties make this newly developed Ti-23Hf-3Mo-4Sn Ti-23Hf-3Mo-4Sn Ti-23Hf-3Mo-4Sn Ti-23Hf-3Mo-4Sns.
Magnesium's combination of low weight, biodegradability, and favourable mechanical properties make it an ideal material for a biodegradable orthopaedic implant.
The enhanced chondrogenic differentiation, distribution of ECM, and improved mechanical properties make these materials potential candidates for cartilage tissue engineering applications.
Porous hydrogels have been explored for bone tissue engineering; however their poor mechanical properties make them less suitable as bone graft substitutes.
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In most cases, field tests can only obtain the macro mechanical properties, making it difficult to reveal the intrinsic meso-mechanism of the SRM deformation and failure process.
This good combination of mechanical properties makes them potential biomedical materials for hard tissue replacement.
However their use has been hampered by poor mechanical properties making them fragile soft scaffolds.
Traditional crosslinked polyester elastomers are inherently weak, and the strategy of increasing crosslink density to improve their mechanical properties makes them brittle materials.
Chondrocytes grown in CE culture and seeded in dense collagen gels produce more cartilaginous matrix with superior mechanical properties, making them more suitable than SS cultured cells for tissue engineering applications.
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