Lorenzo Vaiani, Antonio Boccaccio
A growing interest in creating advanced biomaterials with specific physical and chemical properties is currently being observed. These high-standard materials must be capable to integrate into biological environments such as the oral cavity or other anatomical regions in the human body. Given these requirements, ceramic biomaterials offer a feasible solution in terms of mechanical strength, biological functionality, and biocompatibility. In this review, the fundamental physical, chemical, and mechanical properties of the main ceramic biomaterials and ceramic nanocomposites are drawn, along with some primary related applications in biomedical fields.
@article{59a26390-a5fa-4614-a607-bc9705860f47,
title={Ceramic Materials for Biomedical Applications: An Overview on Properties and Fabrication Processes},
author={Lorenzo Vaiani and Antonio Boccaccio},
year={2023},
language={English}
}TY - JOUR TI - Ceramic Materials for Biomedical Applications: An Overview on Properties and Fabrication Processes AU - Lorenzo Vaiani AU - Antonio Boccaccio PY - 2023 LA - English ER -
Kristin S. Ødegaard, Jan Torgersen
Biomaterials are in high demand due to the increasing geriatric population and a high prevalence of cardiovascular and orthopedic disorders. The combi
Bobur Gayratov, Bekhzod Gayratov
Copper smelter slag represents a significant secondary resource of critical metals, while flotation tailings serve as an abundant sulfur-bearing waste
Regita Bendikiene, Antanas Ciuplys
The influence of the austempering temperatures on the microstructure and mechanical properties of austempered ductile cast iron (ADI) was investigated
Kun Wang, Feng Hu
The tensile properties and work-hardening behavior of austempered bainitic steels below martensite start temperature (Ms) were investigated and compar
Wei Jiang, Dong Wu
Martensitic stainless steels (MSSs) have been widely used in the manufacture of turbine blades, surgical instruments, and cutting tools because of the
Adam Grajcar, Mateusz Morawiec
This paper presents the results of martensite tempering resistance in 4% Mn steel. The material was quenched and tempered at 350 ◦C for 15, 30, and 60