材料科学
纳米片
纳米技术
单层
制作
柔性电子器件
数码产品
自组装
基质(水族馆)
超声波传感器
导电体
光电子学
复合材料
海洋学
化学
地质学
医学
声学
物理
物理化学
病理
替代医学
作者
S.S. Kim,Ho Kwang Choi,Young‐Seok Song,Minyoung Seo,Hyunjung Lee,Sukang Bae,Byung Joon Moon,Seoung‐Ki Lee,Sang Hyun Lee,Tae‐Wook Kim
标识
DOI:10.1002/adma.202501632
摘要
Scalable and cost-effective fabrication of conductive films on substrates with complex geometries is crucial for industrial applications in electronics. Herein, an ultrasonic-driven omni-directional and selective assembly technique is introduced for the uniform deposition of 2D single-crystalline copper nanosheets (Cu NS) onto various substrates. This method leverages cavitation-induced forces to propel Cu NS onto hydrophilic surfaces, enabling the formation of monolayer films with largely monolayer films with some degree of nanosheet overlap. The assembly process is influenced by solvent polarity, nanosheet concentration, and ultrasonic parameters, with non-polar solvents significantly enhancing Cu NS adsorption onto hydrophilic substrates. Furthermore, selective assembly is achieved by patterning hydrophobic and hydrophilic regions on the substrate, ensuring precise localization of Cu NS films. The practical potential of this approach is demonstrated by fabricating a Cu NS-coated capillary tube heater, which exhibits excellent heating performance at low operating voltages. This ultrasonic-driven and selective assembly method offers a scalable and versatile solution for producing conductive films with tailored geometries, unlocking new possibilities for applications in flexible electronics, energy storage, and wearable devices with complex structural requirements.
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