Gan J K, Yap A U, Cheong J W, Arista N, Tan Cbk
Oper Dent. 2018 Mar/Apr;43(2):136-143. doi: 10.2341/16-304-L. Epub 2017 Oct 4.
This study compared the effectiveness of cure of bulk-fill composites using polywave light-emitting diode (LED; with various curing modes), monowave LED, and conventional halogen curing lights. The bulk-fill composites evaluated were Tetric N-Ceram bulk-fill (TNC), which contained a novel germanium photoinitiator (Ivocerin), and Smart Dentin Replacement (SDR). The composites were placed into black polyvinyl molds with cylindrical recesses of 4-mm height and 3-mm diameter and photopolymerized as follows: Bluephase N Polywave High (NH), 1200 mW/cm (10 seconds); Bluephase N Polywave Low (NL), 650 mW/cm (18.5 seconds); Bluephase N Polywave soft-start (NS), 0-650 mW/cm (5 seconds) → 1200 mW/cm (10 seconds); Bluephase N Monowave (NM), 800 mW/cm (15 seconds); QHL75 (QH), 550 mW/cm (21.8 seconds). Total energy output was fixed at 12,000 mJ/cm for all lights/modes, with the exception of NS. The cured specimens were stored in a light-proof container at 37°C for 24 hours, and hardness (Knoop Hardness Number) of the top and bottom surfaces of the specimens was determined using a Knoop microhardness tester (n=6). Hardness data and bottom-to-top hardness ratios were subjected to statistical analysis using one-way analysis of variance/Scheffe's post hoc test at a significance level of 0.05. Hardness ratios ranged from 38.43% ± 5.19% to 49.25% ± 6.38% for TNC and 50.67% ± 1.54% to 67.62% ± 6.96% for SDR. For both bulk-fill composites, the highest hardness ratios were obtained with NM and lowest hardness ratios with NL. While no significant difference in hardness ratios was observed between curing lights/modes for TNC, the hardness ratio obtained with NM was significantly higher than the hardness ratio obtained for NL for SDR.
本研究比较了使用多波发光二极管(LED;具有多种固化模式)、单波LED和传统卤素固化灯对大块充填复合树脂的固化效果。所评估的大块充填复合树脂为含有新型锗光引发剂(Ivocerin)的Tetric N-Ceram大块充填树脂(TNC)和智能牙本质替代材料(SDR)。将复合树脂放入高度为4毫米、直径为3毫米的圆柱形凹槽的黑色聚乙烯模具中,并按以下方式进行光聚合:Bluephase N多波高强度(NH),1200 mW/cm(10秒);Bluephase N多波低强度(NL),650 mW/cm(18.5秒);Bluephase N多波软启动(NS),0 - 650 mW/cm(5秒)→1200 mW/cm(10秒);Bluephase N单波(NM),800 mW/cm(15秒);QHL75(QH),550 mW/cm(21.8秒)。除NS外,所有灯光/模式的总能量输出均固定为12,000 mJ/cm。将固化后的标本置于37°C的避光容器中保存24小时,使用努氏显微硬度计测定标本顶面和底面的硬度(努氏硬度值)(n = 6)。硬度数据和底面与顶面硬度比采用单因素方差分析/谢弗事后检验进行统计分析,显著性水平为0.05。TNC的硬度比范围为38.43%±5.19%至49.25%±6.38%,SDR的硬度比范围为50.67%±1.54%至67.62%±6.96%。对于两种大块充填复合树脂,NM获得的硬度比最高,NL获得的硬度比最低。虽然TNC在固化灯/模式之间的硬度比未观察到显著差异,但SDR使用NM获得的硬度比显著高于使用NL获得的硬度比。