论文标题
弹性骨折期间的量化和映射共价分裂
Quantifying and mapping covalent bond scission during elastomer fracture
论文作者
论文摘要
最近已经发现了许多新的柔软但坚韧的橡胶材料,并连续出现了柔性假肢,可拉伸电极或软机器人的新应用。然而,由于我们的基本无力将沿断裂路径的化学键不可逆地分解,因此尚未出现这些材料损伤和破裂的可信多尺度定量图片。在这里,通过将新的荧光机械化学与定量共聚焦显微镜映射耦合,我们发现了作为弹性骨折的弹性骨折,几个共价键被打破了多少和位置。我们的测量结果表明,在裂纹平面附近的粘结分离可以在多达数百微米的情况下定位,并根据温度和拉伸速率增加100倍,指向应变率依赖性粘液散发和应变依赖性不可逆的网络细分之间的复杂耦合。这些发现描绘了柔软材料中裂缝的完全新颖的图片,在这些发现中,由于共价键分裂消散的能量占总骨折能量的比例要大得多。我们的结果先驱,对粘结分裂的敏感,定量和空间分辨的检测,以评估各种软材料及其应用中的材料损害。
Many new soft but tough rubbery materials have been recently discovered and new applications such as flexible prosthetics, stretchable electrodes or soft robotics continuously emerge. Yet, a credible multi-scale quantitative picture of damage and fracture of these materials has still not emerged, due to our fundamental inability to disentangle the irreversible scission of chemical bonds along the fracture path from dissipation by internal molecular friction. Here, by coupling new fluorogenic mechanochemistry with quantitative confocal microscopy mapping, we uncover how many and where covalent bonds are broken as an elastomer fractures. Our measurements reveal that bond scission near the crack plane can be delocalized over up to hundreds of micrometers and increase by a factor of 100 depending on temperature and stretch rate, pointing to an intricated coupling between strain rate dependent viscous dissipation and strain dependent irreversible network scission. These findings paint an entirely novel picture of fracture in soft materials, where energy dissipated by covalent bond scission accounts for a much larger fraction of the total fracture energy than previously believed. Our results pioneer the sensitive, quantitative and spatially-resolved detection of bond scission to assess material damage in a variety of soft materials and their applications.