具有紧密排列的交叉层状结构的独立超薄银纳米线薄膜的机械稳定性和抗损伤性

Si-Chao Zhang, Huai-Ling Gao, Long Zhang, Yin-Bo Zhu, Ya-Dong Wu, Jian-Wei Liu, Li-Bo Mao, Mei Feng, Liang Dong, Zhao Pan, Xiang-Sen Meng, Yang Lu* and Shu-Hong Yu*, 
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引用次数: 0

摘要

一维功能纳米线由于其独特的功能被广泛用作组装先进纳米器件的纳米级构件。然而,以往的研究主要集中在纳米线的功能上,而忽略了纳米线组件的结构稳定性和抗损伤性,而这对纳米器件的长期运行至关重要。生物材料通过复杂的结构设计实现了优异的机械稳定性和抗损伤性。在这里,我们成功地制备了一种机械稳定的单胞银纳米线(Ag NW)薄膜,基于简单的气泡介导组装和无损转移策略,在多孔混合纤维素酯底物的帮助下,受生物材料的层次结构的启发。由于银纳米硅的紧密排列和弱界面的结合,单层银纳米硅薄膜可以在不损坏的情况下转移到任意基底上。此外,通过引入仿生紧密排列的交叉片层(CPCL)结构,可以从单层银NW膜中获得具有令人印象深刻的抗损伤性的独立多层银NW膜。这种CPCL结构最大限度地提高了Ag NW膜层内和层间的相互作用,确保了有效的应力传递和均匀的电子传递,从而使Ag NW膜具有优异的机械耐久性和稳定的电学性能。
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Mechanically Stable and Damage Resistant Freestanding Ultrathin Silver Nanowire Films with Closely Packed Crossed-Lamellar Structure

One-dimensional (1D) functional nanowires are widely used as nanoscale building blocks for assembling advanced nanodevices due to their unique functionalities. However, previous research has mainly focused on nanowire functionality, while neglecting the structural stability and damage resistance of nanowire assemblies, which are critical for the long-term operation of nanodevices. Biomaterials achieve excellent mechanical stability and damage resistance through sophisticated structural design. Here, we successfully prepared a mechanically stabilized monolamella silver nanowire (Ag NW) film, based on a facile bubble-mediated assembly and nondestructive transfer strategy with the assistance of a porous mixed cellulose ester substrate, inspired by the hierarchical structure of biomaterial. Owing to the closely packed arrangement of Ag NWs combined with their weak interfaces, the monolamellar Ag NW film can be transferred to arbitrary substrates without damage. Furthermore, freestanding multilamellar Ag NW films with impressive damage resistance can be obtained from the monolamellar Ag NW film, through the introduction of bioinspired closely packed crossed-lamellar (CPCL) structure. This CPCL structure maximizes intra- and interlamellar interactions among Ag NWs ensuring efficient stress transfer and uniform electron transport, resulting in excellent mechanical durability and stable electrical properties of the multilamellar Ag NW films.

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来源期刊
Precision Chemistry
Precision Chemistry 精密化学技术-
CiteScore
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期刊介绍: Chemical research focused on precision enables more controllable predictable and accurate outcomes which in turn drive innovation in measurement science sustainable materials information materials personalized medicines energy environmental science and countless other fields requiring chemical insights.Precision Chemistry provides a unique and highly focused publishing venue for fundamental applied and interdisciplinary research aiming to achieve precision calculation design synthesis manipulation measurement and manufacturing. It is committed to bringing together researchers from across the chemical sciences and the related scientific areas to showcase original research and critical reviews of exceptional quality significance and interest to the broad chemistry and scientific community.
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Issue Publication Information Issue Editorial Masthead Issue Editorial Masthead Issue Publication Information Precision in Sensing
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