首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Nanoscopic dynamic mechanical analysis of resin-infiltrated dentine, under in vitro chewing and bruxism events
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Nanoscopic dynamic mechanical analysis of resin-infiltrated dentine, under in vitro chewing and bruxism events

机译:在体外咀嚼和Braxism事件下,树脂渗透牙本质的纳米镜动态力学分析

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The aim of this study was to evaluate the induced changes in mechanical behavior and bonding capability of resin-infiltrated dentine interfaces, after application of mechanical stimuli. Dentine surfaces were subjected to partial demineralization through 37% phosphoric acid etching followed by the application of an etch-and-rinse dentine adhesive, Single Bond (3M/ESPE). Bonded interfaces were stored in simulated body fluid during 24 h, and then tested or submitted to the mechanical loading challenge. Different loading waveforms were applied: No cycling (I), 24 h cycled in sine (II) or square (III) waves, sustained loading held for 24 h (IV) or sustained loading held for 72 h (V). Microtensile bond strength (MTBS) was assessed for the different groups. Debonded dentine surfaces were studied by field emission scanning electron microscopy (FESEM). At the resin-dentine interface, both the hybrid layer (HL) and the bottom of the hybrid layer (BHL), and both peritubular and intertubular were evaluated using a nanoindenter in scanning mode. The load and displacement responses were used to perform the nano-Dynamic Mechanical analysis and to estimate the complex and storage modulus. Dye assisted Confocal Microscopy Evaluation was used to assess sealing ability. Load cycling increased the percentage of adhesive failures in all groups. Specimens load cycled in held 24 h attained the highest complex and storage moduli at HL and BHL. The storage modulus was maximum in specimens load cycled in held 24 h at peritubular dentine, and the lowest values were attained at intertubular dentine. The storage modulus increased in all mechanical tests, at peritubular dentine. An absence of micropermeability and nanoleakage after loading in sine and square waveforms were encountered. Porosity of the resin dentine interface was observed when specimens were load cycled in held 72 h. Areas of combined sealing and permeability were discovered at the interface of specimens load cycled in held 24 h. Crack-bridging images appeared in samples load cycled with sine waveform, after FESEM examination. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本研究的目的是评估应用机械刺激后,树脂渗透牙本质界面的力学行为和粘结能力的诱导变化。牙本质表面通过37%磷酸蚀刻进行部分脱矿,然后使用蚀刻和冲洗牙本质粘合剂单键(3M/ESPE)。粘结界面在24小时内储存在模拟体液中,然后进行测试或提交给机械负荷挑战。应用不同的加载波形:无循环(I)、正弦(II)或方波(III)循环24小时、持续加载24小时(IV)或持续加载72小时(V)。评估不同组的微拉伸粘结强度(MTBS)。通过场发射扫描电子显微镜(FESEM)研究脱粘牙本质表面。在树脂-牙本质界面,在扫描模式下使用纳米压头评估混杂层(HL)和混杂层底部(BHL),以及管周和管间。利用载荷和位移响应进行纳米动态力学分析,并估算复合模量和储能模量。染料辅助共焦显微镜评估用于评估密封能力。负荷循环增加了所有组中粘合剂失效的百分比。在HL和BHL条件下,循环加载24小时的试样达到了最高的复合模量和储存模量。在管周牙本质处,载荷循环24小时的试样的储能模量最大,管间牙本质处的储能模量最低。在管周牙本质的所有力学测试中,储能模量均增加。在正弦波和方波加载后,遇到了微磁导率和纳米泄漏的缺失。当试样在72小时内进行载荷循环时,观察到树脂-牙本质界面的孔隙率。在24小时内进行载荷循环的试样界面上发现了密封和渗透性相结合的区域。FESEM检查后,正弦波形载荷循环的试样中出现了裂纹桥接图像。(C) 2015爱思唯尔有限公司版权所有。

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