Jung Jae-Min, Kim Gyu-Nam, Koh Young-Hag, Kim Hyoun-Ee
Interdisciplinary Program in Precision Public Health, Korea University, Seoul 02841, Republic of Korea.
School of Biomedical Engineering, Korea University, Seoul 02841, Republic of Korea.
Materials (Basel). 2023 Feb 9;16(4):1447. doi: 10.3390/ma16041447.
We herein report manufacturing of dental crowns made of 5-mol% yttria partially stabilized zirconia (5Y-PSZ) with desired mechanical properties, optical translucency and dimensional accuracy using digital light processing (DLP). To this end, all processing parameters were carefully controlled and optimized. First, 5Y-PSZ particles with a bimodal distribution were prepared via calcination of as-received granules and subsequent ball-milling and then used to formulate 5Y-PSZ suspensions with a high solid loading of 50 vol% required for high densification after sintering. Dispersant content was also optimized. To provide high dimensional accuracy, initial dimensions of dental crowns for 3D printing were precisely determined by considering increase and decrease in dimensions during photopolymerization and sintering, respectively. Photopolymerization time was also optimized for a given layer thickness of 50 μm to ensure good bonding between layers. A multi-step debinding schedule with a slow heating rate was employed to avoid formation of any defects. After sintering at 1500 °C for 2 h, 5Y-PSZ could be almost fully densified without noticeable defects within layers and at interfaces between layers. They had high relative densities (99.03 ± 0.39%) with a high cubic phase content (59.1%). These characteristics allowed for achievement of reasonably high mechanical properties (flexural strength = 625.4 ± 75.5 MPa and Weibull modulus = 7.9) and % transmittance (31.4 ± 0.7%). In addition, 5Y-PSZ dental crowns showed excellent dimensional accuracy (root mean square (RMS) for marginal discrepancy = 44.4 ± 10.8 μm and RMS for internal gap = 22.8 ± 1.6 μm) evaluated by the 3D scanning technique.
我们在此报告使用数字光处理(DLP)制造具有所需机械性能、光学透明度和尺寸精度的5摩尔%氧化钇部分稳定氧化锆(5Y-PSZ)牙冠。为此,仔细控制和优化了所有加工参数。首先,通过对原样颗粒进行煅烧、随后球磨制备具有双峰分布的5Y-PSZ颗粒,然后用于配制烧结后实现高密度所需的50体积%高固体负载的5Y-PSZ悬浮液。还优化了分散剂含量。为了提供高尺寸精度,通过分别考虑光聚合和烧结过程中的尺寸增加和减小,精确确定用于3D打印的牙冠的初始尺寸。对于给定的50μm层厚,还优化了光聚合时间,以确保层间的良好结合。采用加热速率缓慢的多步脱脂工艺,以避免形成任何缺陷。在1500℃烧结2小时后,5Y-PSZ几乎可以完全致密化,层内和层间界面均无明显缺陷。它们具有高相对密度(99.03±0.39%)和高立方相含量(59.1%)。这些特性使得能够实现相当高的机械性能(弯曲强度= 625.4±75.5MPa,威布尔模量= 7.9)和透光率(31.4±0.7%)。此外,通过3D扫描技术评估,5Y-PSZ牙冠显示出优异的尺寸精度(边缘差异的均方根(RMS)= 44.4±10.8μm,内部间隙的RMS = 22.8±1.6μm)。