Zhu Guangyan, Peng Qian, Luo Ting, Pan Hao, Wang Yuehong, Peng Zhiwei
School of Minerals Processing and Bioengineering, Central South University, Changsha 410083, China.
Xiangya Stomatological Hospital, Central South University, Changsha 410008, China.
Materials (Basel). 2022 Sep 7;15(18):6206. doi: 10.3390/ma15186206.
The feasibility of synthesis of Ti6Al4V/SrFHA (CaSr(PO)F) composites via coating strontium and fluorine co-doped HA to Ti6Al4V substrate by microwave-assisted liquid phase deposition and calcination was evaluated, with a focus on the effect of the deposition temperature from 30 °C to 70 °C. The outcomes demonstrate that strontium and fluorine can be successfully doped into HA to form a SrFHA coating with modified micromorphology which is deposited on the alloy. When the deposition temperature was 50 °C, the coating with the largest uniform continuous SrFHA coverage was obtained. After calcination, the adhesion strength and Vickers microhardness of the Ti6Al4V/SrFHA composite increased from 0.68 MPa and 323 HV to 2.41 MPa and 329 HV, respectively, with a decrease in the water contact angle from 10.88° to 7.24°, exhibiting enhancement of both mechanical properties and wettability. Moreover, the composite obtained at the deposition temperature of 50 °C exhibited good bioactivity based on the simulate body fluid (SBF) test. On account of the above features primarily as a result of the combined effect of the co-doping of strontium and fluorine, high crystallinity of SrFHA, large surface roughness, and formation of the titanium oxide transition layer, the Ti6Al4V/SrFHA composite shows great potential in dental implantology.
通过微波辅助液相沉积和煅烧,在Ti6Al4V基体上涂覆锶和氟共掺杂的羟基磷灰石(CaSr(PO)F)来合成Ti6Al4V/SrFHA复合材料的可行性进行了评估,重点研究了30℃至70℃沉积温度的影响。结果表明,锶和氟能够成功掺杂到羟基磷灰石中,形成具有改性微观形貌的SrFHA涂层,并沉积在合金上。当沉积温度为50℃时,获得了均匀连续SrFHA覆盖率最大的涂层。煅烧后,Ti6Al4V/SrFHA复合材料的结合强度和维氏显微硬度分别从0.68MPa和323HV提高到2.41MPa和329HV,水接触角从10.88°降低到7.24°,机械性能和润湿性均得到增强。此外,基于模拟体液(SBF)试验,在50℃沉积温度下获得的复合材料表现出良好的生物活性。由于上述特性主要是锶和氟共掺杂、SrFHA的高结晶度、大表面粗糙度以及氧化钛过渡层形成的综合作用的结果,Ti6Al4V/SrFHA复合材料在牙种植学中显示出巨大潜力。