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A general strategy for printing colloidal nanomaterials into one-dimensional micro/nanolines

机译:一般印刷胶体的策略纳米材料在一维

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摘要

Though patterned one-dimensional (1D) micro/nanoline arrays are of great importance in the field of integrated circuits and optoelectronics, the fabrication of high-precision micro/nanolines with excellent optical and electrical performance remains a great challenge. Herein, a general strategy for printing 1D micro/nanolines is proposed by manipulating the self-assembly of functional nanoparticles as a multilayer or monolayer stack with a single-nanoparticle width. This method is universal for dispersible nanoparticles, and the silver nanoparticle was selected as a model nanoparticle due to its good conductivity, dispersibility and narrow-size distribution. The results indicate that the morphologies of printed micro/nanolines can be precisely regulated by the substrate wettability and the suspension concentration. Specifically, 1D nanoparticle-assembled architectures are printed as a monolayer stack on the substrate with a low contact angle (below 45 degrees), while a multilayer stack is formed on the substrate with a high contact angle (above 50 degrees) or a high concentration (more than 0.12). The controllability of micro/nanoline morphologies can be interpreted through the influence of the three phase contact line slipping motion and the nanoparticle diffusion on diverse substrates at different concentrations. Alteration of the printing template structures enables the intervals of 1D micro/nanolines to span from 16 m to 48 m. These results provide an efficient methodology for fabricating micro/nano-circuits or optics and strengthening the understanding of the self-assembling process.
机译:尽管有图案的一维(1 d)微/ nanoline数组是非常重要的集成电路和领域光电子学的制造高精度微/ nanolines优秀光学和电子性能仍然是一个巨大的挑战。印刷1 d微/ nanolines提出的操作功能的自组装纳米粒子作为多层或单层堆栈single-nanoparticle宽度。普遍的分散纳米粒子,银纳米颗粒被选为一个模型纳米颗粒由于其良好的导电性,可分散性和narrow-size分布。结果表明,印刷的形态微/ nanolines可以精确的监管底物润湿性和悬架浓度。nanoparticle-assembled架构印刷作为一个单层堆栈与较低的衬底接触角(低于45度),而一个多层堆栈衬底上形成高接触角(50度以上)或高浓度(0.12%以上)。可控制性微观/ nanoline形态可以通过的影响来解释三相接触线和滑动运动纳米颗粒在不同基质扩散不同的浓度。使印刷模板结构间隔的一维微/ nanolines跨度从16米48 m。方法制作微/ nano-circuits或光学和加强的理解自组装过程。

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