Development of Zirconia/Calcium Phosphate/Pyrolytic Carbon Composites with Nanoscale Lamellar-Structured Grain Boundary Phases to Control Crack Propagation for Biomedical Applications

IF 5.5 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY ACS Applied Nano Materials Pub Date : 2025-04-02 DOI:10.1021/acsanm.5c00179
Taishi Yokoi*, Peng Chen, Kaname Yoshida, Yeongjun Seo, Tomoyo Goto, Karen Kuroyama, Tohru Sekino, Tomoka Hasegawa, Tetsuya Yoda, Hiroyasu Kanetaka and Masakazu Kawashita, 
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Abstract

Ceramic-based artificial bones that remain in the body for extended periods must exhibit high mechanical stability. However, the inherent brittleness of ceramics makes it difficult to ensure their long-term stability in vivo. In our previous work, we enhanced the damage tolerance of bulk calcium phosphate (CaP) ceramics by controlling the direction of crack propagation through lamellar structures. Although this material was compositionally suitable for artificial bone applications, its insufficient strength limited its practical use. Therefore, in this study, we developed an artificial bone composite with enhanced crack propagation control by incorporating a nanoscale lamellar-structured CaP phase into zirconia, a ceramic known for its high strength and toughness. The resulting composite features a controlled structure where hydroxyapatite and pyrolytic carbon form nanoscale lamellar structures at the grain boundaries of spherical tetragonal zirconia. The bending strength of this composite was found to be 360 MPa, which is significantly higher than that of dense hydroxyapatite sintered bodies, which are typical nonbiodegradable artificial bone materials. When a crack developed in this composite by indentation test, the damaged part detached. No evident cracks were found after the test, and the material as a whole maintained its integrity. This unique property is likely attributed to the nanoscale lamellar structures at the grain boundaries. Further, in vitro tests conducted using MC3T3-E1 cells confirmed that the composite exhibited no apparent cytotoxicity. Our results indicate that the developed composite can be potentially used to prepare novel nonbiodegradable artificial bone material with excellent long-term mechanical stability in vivo.

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纳米片状晶界相氧化锆/磷酸钙/热解碳复合材料在生物医学中的应用
陶瓷人造骨要在体内长时间存在,必须表现出高度的机械稳定性。然而,陶瓷固有的脆性使得其在体内的长期稳定性难以保证。在我们之前的工作中,我们通过控制裂纹在片层结构中的扩展方向来提高块状磷酸钙(CaP)陶瓷的损伤容限。虽然这种材料在成分上适合于人工骨的应用,但其强度不足限制了其实际应用。因此,在这项研究中,我们开发了一种人工骨复合材料,通过将纳米级片状结构的CaP相结合到氧化锆中来增强裂纹扩展控制,氧化锆是一种以其高强度和韧性而闻名的陶瓷。所得到的复合材料具有可控结构,羟基磷灰石和热解碳在球形四角形氧化锆的晶界处形成纳米级片层结构。该复合材料的抗弯强度为360 MPa,明显高于致密羟基磷灰石烧结体的抗弯强度,后者是典型的不可生物降解人工骨材料。通过压痕试验,当复合材料中出现裂纹时,受损部分脱落。试验后未发现明显裂纹,材料整体保持完整。这种独特的性质可能归因于晶界的纳米级片层结构。此外,使用MC3T3-E1细胞进行的体外试验证实,该复合物没有明显的细胞毒性。研究结果表明,该复合材料可用于制备新型非生物降解人工骨材料,具有良好的体内长期机械稳定性。
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来源期刊
CiteScore
8.30
自引率
3.40%
发文量
1601
期刊介绍: ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.
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