Institute for Mechanics of Materials and Structures, TU Wien (Vienna University of Technology), Karlsplatz 13/202, 1040 Vienna, Austria.
Septodont, 105 Avenue Beaurepaire, 94100 Saint-Maur-des-Fossés, France.
J Mech Behav Biomed Mater. 2021 Dec;124:104863. doi: 10.1016/j.jmbbm.2021.104863. Epub 2021 Oct 2.
Biodentine is a calcium silicate/calcium carbonate/zirconium dioxide/water-based dental replacement biomaterial, significantly outperforming the stiffness and hardness properties of chemically similar construction cement pastes. We here report the first systematic micromechanical investigation of Biodentine, combining grid nanoindentation with ultrasonic testing and micromechanical modeling. Histograms of nanoindentation-probed hardness and elastic modulus, comprising more than 5700 values each, are very well represented by the superposition of three log-normal distributions (LNDs). Most of the data (74%) belong to the intermediate LND, representing highly dense calcite-reinforced hydration products with on-average more than 60GPa elastic modulus and 3GPa hardness. The remaining data refer, on the one hand, to lower density hydration products, and on the other hand, to single-micron-sized unhydrated clinker and zirconium-dioxide inclusions. Micromechanical homogenization of these three material phases delivers elastic properties of the overall cement paste material, which significantly exceed those probed by more than 300 ultrasonic tests performed in the kHz and MHz regime. This indicates the presence of micro-defects, which slightly weaken the otherwise highly optimized biomaterial system.
碧迪思汀是一种硅酸钙/碳酸钙/氧化锆/水基牙科替代生物材料,其刚度和硬度性能明显优于化学相似结构的水泥浆。我们在这里首次对碧迪思汀进行了系统的微观力学研究,将网格纳米压痕与超声测试和微观力学建模相结合。由超过 5700 个值组成的纳米压痕探测硬度和弹性模量直方图,非常好地由三个对数正态分布(LND)的叠加表示。大多数数据(74%)属于中间 LND,代表高度致密的方解石增强水合产物,平均弹性模量超过 60GPa,硬度为 3GPa。其余数据一方面指的是低密度水合产物,另一方面指的是单个微米大小的未水化熟料和氧化锆夹杂。对这三种材料相进行微观力学均匀化,可得到整个水泥浆材料的弹性性能,这显著超过了在 kHz 和 MHz 范围内进行的超过 300 次超声测试所探测到的性能。这表明存在微缺陷,这些微缺陷略微削弱了原本高度优化的生物材料系统。