In orthopedic application, bone tissue engineering (BTE) is a novel treatment method for bone defects involving bone regeneration using an artificial supporting structure called scaffold. The aim of this work is to fabricate graphene-reinforced poly(lactic acid) (PLA/Gr) scaffolds with different pore shapes (circular, square and hexagonal) and different pore sizes (1000, 1500 and 2000 μm) using the fused deposition modeling process. The characteristics of the three-dimensionally (3D) printed PLA/Gr scaffolds were analyzed through Fourier transform infrared spectroscopy, thermogravimetric analysis, derivative thermogravimetry, scanning electron microscopy and energy-dispersive X-ray spectroscopy. The water contact angle measurement showed a hydrophilic surface (70 ± 2.7°) for scaffolds with a pore size of 1000 μm. Mechanical property studies showed that the scaffold with circular 1000 μm pores had a compressive strength of 18.53 ± 0.90 MPa, which was similar to the cancellous bone value. In addition, this study involved an examination of the in vitro bioactivity, water uptake and biodegradation characteristics of the scaffolds. The results reveal that the 3D-printed PLA/Gr scaffold featuring a circular pore shape with a pore size of 1000 μm exhibits great potential as an implant for BTE.
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1 December 2023
Research Article|
September 19 2023
Characterization of 3D-printed graphene-reinforced PLA scaffold for bone regeneration Available to Purchase
Manoharan Karthic, ME
;
Department of Mechanical Engineering, Thiagarajar College of Engineering, Madurai, India
(corresponding author: karthicmanokar@gmail.com)
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Kunjan Chockalingam, PhD;
Kunjan Chockalingam, PhD
Professor
Department of Mechanical Engineering, Thiagarajar College of Engineering, Madurai, India
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Chandran Vignesh, ME;
Chandran Vignesh, ME
Assistant Professor
Department of Mechanical Engineering, Thiagarajar College of Engineering, Madurai, India
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K Jawaharlal Nagarajan, PhD
K Jawaharlal Nagarajan, PhD
Assistant Professor
Department of Mechatronics Engineering, Thiagarajar College of Engineering, Madurai, India
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(corresponding author: karthicmanokar@gmail.com)
Publisher: Emerald Publishing
Received:
March 18 2023
Accepted:
September 13 2023
Online ISSN: 2046-0155
Print ISSN: 2046-0147
Emerald Publishing Limited: All rights reserved
2023
Emerging Materials Research (2023) 12 (4): 382–394.
Article history
Received:
March 18 2023
Accepted:
September 13 2023
Citation
Karthic M, Chockalingam K, Vignesh C, Nagarajan KJ (2023), "Characterization of 3D-printed graphene-reinforced PLA scaffold for bone regeneration". Emerging Materials Research, Vol. 12 No. 4 pp. 382–394, doi: https://doi.org/10.1680/jemmr.23.00048
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