纳米技术
超分子化学
材料科学
数码产品
纳米光刻
有机电子学
纳米线
分子电子学
柔性电子器件
晶体管
超分子组装
有机半导体
超分子聚合物
制作
光电子学
电气工程
化学
晶体结构
分子
工程类
电压
病理
有机化学
医学
结晶学
替代医学
作者
Yifan Yao,Lei Zhang,Emanuele Orgiu,Paolo Samorı́
标识
DOI:10.1002/adma.201900599
摘要
The scientific effort toward achieving a full control over the correlation between structure and function in organic and polymer electronics has prompted the use of supramolecular interactions to drive the formation of highly ordered functional assemblies, which have been integrated into real devices. In the resulting field of supramolecular electronics, self-assembly of organic semiconducting materials constitutes a powerful tool to generate low-dimensional and crystalline functional architectures. These include 1D nanostructures (nanoribbons, nanotubes, and nanowires) and 2D molecular crystals with tuneable and unique optical, electronic, and mechanical properties. Optimizing the (opto)electronic properties of organic semiconducting materials is imperative to harness such supramolecular structures as active components for supramolecular electronics. However, their integration in real devices currently represents a significant challenge to the advancement of (opto)electronics. Here, an overview of the unconventional nanofabrication techniques and device configurations to enable supramolecular electronics to become a real technology is provided. A particular focus is put on how single and multiple supramolecular fibers and gels as well as supramolecularly engineered 2D materials can be integrated into novel vertical or horizontal junctions to realize flexible and high-density multifunctional transistors, photodetectors, and memristors, exhibiting a set of new properties and excelling in their performances.
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