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Heating effect of a one-dimensional molecular assembly on self-repairing capability in the nanoscopic channels of mesoporous silica

机译:一维分子组装对介孔二氧化硅纳米镜通道中自修复能力的加热效果

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Self-repairable optoelectronic devices from a heat-induced structural damaged are potentially important for sensor [1] and display [2] applications. Recently, self-healing phenomena have attracted particular attention for developing sustainable structural materials [3], where extensive studies have been reported on polymeric materials capable of autonomous repairing macroscopic fractures or restoration lost mechanical strengths [4, 5]. On the other hand, for exploiting molecular devices that can self-repair elaborate functions, one may encounter different problems originating from much smaller size regimes. However, no rational strategies have yet been proposed for addressing this challenging issue. In our previous paper, when a phosphorescent columnar assembly of trinuclear gold(I) pyrazolate complex [Au3Pz3] is confined in the nanoscopic channel of hexagonal mesoporous silica [Au3Pz3]/silicahex (Fig. 1), upon stepwise heating from 20 °C to 140 °C in 45 min, the one-dimensional molecular assemblies are not only protected from thermal disruption but also strongly encouraged to self-recover to 100% in 5 h from a heat-induced structural damaged [6].
机译:来自热诱导的结构损伤的自我修复的光电器件可能对传感器[1]和显示[2]应用很重要。最近,自我愈合现象引起了开发可持续结构材料的特别关注[3],其中报道了能够自主修复宏观骨折或恢复机械强度的聚合物材料进行广泛的研究[4,5]。另一方面,对于利用可以自修复精心修复功能的分子装置,可以遇到源自小规模制度的不同问题。但是,尚未提出任何合理的策略来解决这一具有挑战性的问题。在我们之前的论文中,当三核金(I)磷光柱组件的磷光柱组件[Au 3 PZ 3 ]限制在六边形介孔二氧化硅的纳米镜通道中[Au 3 PZ 3 ] /二氧化硅六角六进:(图1),在45分钟内从20℃加热到140℃,一维分子组件不仅保护了热破坏,而且强烈促使从5小时内自恢复至100%,从热诱导的结构受损[6]。

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