Synthesis and 3D Interconnected Nanostructured h-BN-Based Biocomposites by Low-Temperature Plasma Sintering: Bone Regeneration Applications
Author(s) -
Chandkiram Gautam,
Dibyendu Chakravarty,
Amarendra Gautam,
Chandra Sekhar Tiwary,
Cristiano F. Woellner,
Vijay Kumar Mishra,
Naseer Ahmad,
Şehmus Özden,
Sujin P. Jose,
Santoshkumar Biradar,
Róbert Vajtai,
Ritu Trivedi,
Douglas S. Galvão,
Pulickel M. Ajayan
Publication year - 2018
Publication title -
acs omega
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.779
H-Index - 40
ISSN - 2470-1343
DOI - 10.1021/acsomega.8b00707
Subject(s) - regeneration (biology) , materials science , sintering , plasma , chemical engineering , composite material , microbiology and biotechnology , engineering , physics , quantum mechanics , biology
Recent advances and demands in biomedical applications drive a large amount of research to synthesize easily scalable low-density, high-strength, and wear-resistant biomaterials. The chemical inertness with low density combined with high strength makes h-BN one of the promising materials for such application. In this work, three-dimensional hexagonal boron nitride (h-BN) interconnected with boron trioxide (B 2 O 3 ) was prepared by easily scalable and energy efficient spark plasma sintering (SPS) process. The composite structure shows significant densification (1.6-1.9 g/cm 3 ) and high surface area (0.97-14.5 m 2 /g) at an extremely low SPS temperature of 250 °C. A high compressive strength of 291 MPa with a reasonably good wear resistance was obtained for the composite structure. The formation of strong covalent bonds between h-BN and B 2 O 3 was formulated and established by molecular dynamics simulation. The composite showed significant effect on cell viability/proliferation. It shows a high mineralized nodule formation over the control, which suggests its use as a possible osteogenic agent in bone formation.
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