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Lidiane C Costa

Showing results (1-10 of 6) with videos related to

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Journal of the Mechanical Behavior of Biomedical Materials|February 8, 2017
Immiscible poly(lactic acid)/poly(ε-caprolactone) for temporary implants: Compatibility and cytotoxicityPablo F M Finotti, Lidiane C Costa, Ticiana S O Capote, et al.
Materials Science & Engineering. C, Materials for Biological Applications|March 1, 2021
Engineering 3D printed bioactive composite scaffolds based on the combination of aliphatic polyester and calcium phosphates for bone tissue regenerationEduardo H Backes, Emanuel M Fernandes, Gabriela S Diogo, et al.
Biomedical Materials (Bristol, England)|July 10, 2024
Additive manufacturing of bioactive and biodegradable poly (lactic acid)-tricalcium phosphate scaffolds modified with zinc oxide for guided bone tissue repairSamarah V Harb, Elayaraja Kolanthai, Leonardo A Pinto, et al.
ACS Applied Materials & Interfaces|March 12, 2025
Controlling Plasma-Functionalized Fillers for Enhanced Properties of PLA/ZnO Biocomposites: Effects of Excess l-Lactic Acid and Biomedical ImplicationsDaniel A L V Cunha, Felippe M Marega, Leonardo A Pinto, et al.
Tissue Engineering and Regenerative Medicine|October 19, 2023
Effect of Silicon Dioxide and Magnesium Oxide on the Printability, Degradability, Mechanical Strength and Bioactivity of 3D Printed Poly (Lactic Acid)-Tricalcium Phosphate Composite ScaffoldsSamarah V Harb, Elayaraja Kolanthai, Eduardo H Backes, et al.
Biomaterials and Biosystems|January 12, 2024
3D printed bioabsorbable composite scaffolds of poly (lactic acid)-tricalcium phosphate-ceria with osteogenic property for bone regenerationSamarah V Harb, Elayaraja Kolanthai, Abinaya S Pugazhendhi, et al.
Pageof 1

Showing results (1-10 of 6) with videos related to

Sort By:
Pageof 1
Journal of the Mechanical Behavior of Biomedical Materials|February 8, 2017
Immiscible poly(lactic acid)/poly(ε-caprolactone) for temporary implants: Compatibility and cytotoxicityPablo F M Finotti, Lidiane C Costa, Ticiana S O Capote, et al.
Materials Science & Engineering. C, Materials for Biological Applications|March 1, 2021
Engineering 3D printed bioactive composite scaffolds based on the combination of aliphatic polyester and calcium phosphates for bone tissue regenerationEduardo H Backes, Emanuel M Fernandes, Gabriela S Diogo, et al.
Biomedical Materials (Bristol, England)|July 10, 2024
Additive manufacturing of bioactive and biodegradable poly (lactic acid)-tricalcium phosphate scaffolds modified with zinc oxide for guided bone tissue repairSamarah V Harb, Elayaraja Kolanthai, Leonardo A Pinto, et al.
ACS Applied Materials & Interfaces|March 12, 2025
Controlling Plasma-Functionalized Fillers for Enhanced Properties of PLA/ZnO Biocomposites: Effects of Excess l-Lactic Acid and Biomedical ImplicationsDaniel A L V Cunha, Felippe M Marega, Leonardo A Pinto, et al.
Tissue Engineering and Regenerative Medicine|October 19, 2023
Effect of Silicon Dioxide and Magnesium Oxide on the Printability, Degradability, Mechanical Strength and Bioactivity of 3D Printed Poly (Lactic Acid)-Tricalcium Phosphate Composite ScaffoldsSamarah V Harb, Elayaraja Kolanthai, Eduardo H Backes, et al.
Biomaterials and Biosystems|January 12, 2024
3D printed bioabsorbable composite scaffolds of poly (lactic acid)-tricalcium phosphate-ceria with osteogenic property for bone regenerationSamarah V Harb, Elayaraja Kolanthai, Abinaya S Pugazhendhi, et al.
Pageof 1