Korea Institute for Rare Metal, Korea Institute of Industrial Technology, Yeonsu-gu, Incheon 21999, Republic of Korea.
Department and Research Institute of Dental Biomaterials and Bioengineering, Yonsei University College of Dentistry, Seodaemun-gu, Seoul 03722, Republic of Korea.
Dent Mater. 2020 Jun;36(6):744-754. doi: 10.1016/j.dental.2020.03.002. Epub 2020 Apr 14.
The main goal of this research was to demonstrate the potential value of boron nitride nanoplatelets (BNNPs), which have excellent mechanical properties and biocompatibility, as a suitable reinforcement for dental materials.
The BNNPs were prepared by exfoliating h-BN via high-energy ball-milling and dispersion on a zirconia matrix. Then the composite powder was consolidated using spark plasma sintering. Fracture toughness, flexural strength and wear resistance were the mechanical properties explored. Agar diffusion-based biocompatibility testing was carried out. Low temperature degradation tests were also performed in a steam environment in an autoclave.
The BNNPs dispersed zirconia exhibited improved strength (up to 27.3%), and fracture toughness was also increased (up to 37.5%) with the addition of 1-1.5 vol.% BNNPs. Tribological properties were also enhanced by the addition of BNNPs. The cytotoxicity tests confirmed that the BNNPs do not have obvious toxicity. The accelerated low-temperature degradation experiment revealed the barrier properties of the BNNPs, whose addition almost fully inhibited the degradation of the zirconia matrix in a humid environment.
The main contribution of this study is the introduction of an advanced material, BNNP, which can be used as a biocompatible reinforcement for dental materials, resulting in enhanced mechanical properties of the system due to its unique structure and extraordinary properties.
本研究的主要目的是展示氮化硼纳米片(BNNPs)的潜在价值,BNNPs 具有优异的机械性能和生物相容性,可作为牙科材料的合适增强材料。
通过高能球磨和在氧化锆基体上的分散作用从 h-BN 制备 BNNPs。然后使用火花等离子烧结来固结复合粉末。研究了力学性能,包括断裂韧性、弯曲强度和耐磨性。进行了琼脂扩散法的生物相容性测试。还在高压釜中的蒸汽环境中进行了低温降解测试。
分散的 BNNPs 增强的氧化锆表现出提高的强度(高达 27.3%),并且添加 1-1.5 体积%的 BNNPs 也提高了断裂韧性(高达 37.5%)。添加 BNNPs 还增强了摩擦学性能。细胞毒性测试证实 BNNPs 没有明显的毒性。加速低温降解实验揭示了 BNNPs 的阻挡性能,其添加几乎完全抑制了氧化锆基体在潮湿环境中的降解。
本研究的主要贡献是引入了一种先进的材料 BNNP,它可用作牙科材料的生物相容增强材料,由于其独特的结构和非凡的性能,该材料增强了系统的机械性能。