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基于纳米压痕和光声寿命(PAL)研究的二甲基丙烯酸酯类牙科复合材料中的光固化体积收缩

Light-Curing Volumetric Shrinkage in Dimethacrylate-Based Dental Composites by Nanoindentation and PAL Study.

作者信息

Shpotyuk Olha, Adamiak Stanislaw, Bezvushko Elvira, Cebulski Jozef, Iskiv Maryana, Shpotyuk Oleh, Balitska Valentina

机构信息

Danylo Halytsky Lviv National Medical University, 69, Pekarska St., Lviv, 79010, Ukraine.

Centre for Innovation and Transfer of Natural Sciences and Engineering Knowledge, University of Rzeszow, 35-959, Rzeszow, Poland.

出版信息

Nanoscale Res Lett. 2017 Dec;12(1):75. doi: 10.1186/s11671-017-1845-y. Epub 2017 Jan 25.

Abstract

Light-curing volumetric shrinkage in dimethacrylate-based dental resin composites Dipol® is examined through comprehensive kinetics research employing nanoindentation measurements and nanoscale atomic-deficient study with lifetime spectroscopy of annihilating positrons. Photopolymerization kinetics determined through nanoindentation testing is shown to be described via single-exponential relaxation function with character time constants reaching respectively 15.0 and 18.7 s for nanohardness and elastic modulus. Atomic-deficient characteristics of composites are extracted from positron lifetime spectra parameterized employing unconstrained x3-term fitting. The tested photopolymerization kinetics can be adequately reflected in time-dependent changes observed in average positron lifetime (with 17.9 s time constant) and fractional free volume of positronium traps (with 18.6 s time constant). This correlation proves that fragmentation of free-volume positronium-trapping sites accompanied by partial positronium-to-positron traps conversion determines the light-curing volumetric shrinkage in the studied composites.

摘要

通过采用纳米压痕测量和正电子湮没寿命谱的纳米级原子缺陷研究的综合动力学研究,对基于二甲基丙烯酸酯的牙科树脂复合材料Dipol®中的光固化体积收缩进行了研究。通过纳米压痕测试确定的光聚合动力学表明,其可通过单指数弛豫函数来描述,纳米硬度和弹性模量的特征时间常数分别达到15.0和18.7秒。复合材料的原子缺陷特征是从采用无约束x3项拟合参数化的正电子寿命谱中提取的。测试的光聚合动力学可以在平均正电子寿命(时间常数为17.9秒)和正电子素陷阱的自由体积分数(时间常数为18.6秒)中观察到的时间依赖性变化中得到充分反映。这种相关性证明,伴随着部分正电子素到正电子陷阱的转变,自由体积正电子素捕获位点的碎片化决定了所研究复合材料中的光固化体积收缩。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdfb/5267579/b8237efac112/11671_2017_1845_Fig1_HTML.jpg

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