Effect of artificial aging on fracture toughness and hardness of 3D-printed and milled 3Y-TZP zirconia

被引:1
作者
Alhotan, Abdulaziz [1 ]
Yilmaz, Burak [2 ]
Weber, Anna [3 ]
Babaier, Rua [4 ]
Bourauel, Christoph [3 ]
Fouda, Ahmed Mahmoud [3 ,5 ]
机构
[1] King Saud Univ, Coll Appl Med Sci, Dept Dent Hlth, Riyadh, Saudi Arabia
[2] Univ Bern, Sch Dent Med, Dept Reconstruct Dent & Gerodontol, Bern, Switzerland
[3] Univ Hosp Bonn, Med Fac, Dept Oral Technol, Welschnonnenstr 17, D-53111 Bonn, North Rhine Wes, Germany
[4] King Saud Univ, Coll Dent, Dept Prosthet Dent Sci, Riyadh, Saudi Arabia
[5] Suez Canal Univ, Dept Fixed Prosthodont, Ismailia, Egypt
来源
JOURNAL OF PROSTHODONTICS-IMPLANT ESTHETIC AND RECONSTRUCTIVE DENTISTRY | 2024年
关键词
3D-printed; 3Y-TZP; aging; fracture toughness; hardness; lithography-based ceramic manufacturing; milled; FLEXURAL STRENGTH; MECHANICAL-PROPERTIES; IN-VITRO; CERAMICS; COMPOSITES; ACCURACY; IMPLANT; RESIN;
D O I
10.1111/jopr.13943
中图分类号
R78 [口腔科学];
学科分类号
1003 ;
摘要
PurposeThis study aimed to evaluate the impact of artificial aging on the fracture toughness and hardness of three-dimensional (3D)-printed and computer-aided design and computer-aided manufacturing (CAD-CAM) milled 3 mol% yttria-stabilized tetragonal zirconia polycrystals (3Y-TZP). Materials and MethodsForty bar-shaped specimens (45 x 4 x 3 mm) were prepared using two manufacturing technologies: 3D printing (LithaCon 3Y 210, Lithoz GmbH, Vienna, Austria; n = 20) and milling (Initial Zirconia ST, GC, Japan; n = 20) of 3Y-TZP. The chevron-notch beam method was used to assess the fracture toughness according to ISO 24370. Specimens from each 3Y-TZP group were divided into two subgroups (n = 10) based on the artificial aging process (autoclaving): nonaged and aged. Nonaged specimens were stored at room temperature, while aged specimens underwent autoclave aging at 134 degrees C under 2 bar-pressure for 5 h. Subsequently, the specimens were immersed in absolute 99% ethanol using an ultrasonic cleaner for 5 min. Each specimen was preloaded by subjecting it to a 4-point loading test, with a force of up to 200 N applied for three cycles. Further 4-point loading was conducted at a rate of 0.5 mm/min under controlled temperature and humidity conditions until fracture occurred. The maximum force (Fmax) was recorded and the chevron notch was examined at 30 x magnification under an optical microscope for measurements before the fracture toughness (KIc) was calculated. Microhardness testing was also performed to measure the Vickers hardness number (VHN). A scanning electron microscope (SEM) coupled with an energy dispersive X-ray unit (EDX) was used to examine surface topography and chemical composition. X-ray diffraction (XRD) was conducted to identify crystalline structure. Data were statistically analyzed using two-way ANOVA and Student's t-test with a significance level of 0.05. ResultsThe nonaged 3D-printed 3Y-TZP group exhibited a significantly higher fracture toughness value (6.07 MPa m(1/2)) than the milled 3Y-TZP groups (p < 0.001). After autoclave aging, the 3D-printed 3Y-TZP group maintained significantly higher fracture toughness (p < 0.001) compared to the milled 3Y-TZP group. However, no significant differences in hardness values (p = 0.096) were observed between the aged and nonaged groups within each manufacturing process (3D-printed and milled) independently. ConclusionThe findings revealed that the new 3D-printed 3Y-TZP produced by the lithography-based ceramic manufacturing (LCM) technology exhibited superior fracture toughness after autoclave aging compared to the milled 3Y-TZP. While no significant differences in hardness were observed between the aged groups, the 3D-printed material demonstrated greater resistance to fracture, indicating enhanced mechanical stability.
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页数:9
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