材料科学
接口(物质)
方向(向量空间)
有机半导体
数码产品
纳米技术
有机电子学
分子电子学
生物电子学
开尔文探针力显微镜
工作(物理)
可扩展性
半导体
散射
电荷(物理)
光电子学
柔性电子器件
半导体器件
分子动力学
扫描探针显微镜
显微镜
自组装
计算机科学
载流子
原子力显微镜
激子
纳米尺度
光散射
有机发光二极管
作者
Attia Shaheen,Nadia Anwar,Fang Chen,Yue Chan,Haibing Xie,Shern‐Long Lee
标识
DOI:10.1002/adfm.202505173
摘要
Abstract Molecular‐based electronic devices exploit the unique properties of single molecules or assemblies to surpass conventional solid‐state systems in miniaturization, efficiency, and functional diversity. Their performance hinges on controlling molecular orientation and packing at interfaces, which dictate charge transport and energy‐level alignment. Molecular orientation describes the directional alignment (e.g., face‐on, edge‐on) of organic semiconductors relative to substrates, while packing involves spatial arrangement, crystallinity, and interactions (π–π stacking, hydrogen bonding). Advanced techniques such as scanning probe microscopy (SPM), grazing‐incidence wide‐angle X‐ray scattering (GIWAXS), and Kelvin probe force microscopy (KPFM) elucidate these structural features, establishing correlations with optoelectronic properties like light absorption, exciton dynamics, and charge carrier mobility. The interplay between orientation and packing governs energy‐level alignment and charge transport via interfacial work function modulation. Emerging computational tools like machine learning (ML) and multiscale simulations enable predictive design of molecular configurations for targeted device functionalities. However, challenges remain in achieving uniform molecular alignment across practical device architectures and establishing robust structure‐property relationships under operational conditions. Addressing these requires integrating experimental characterization, computational modeling, and synthetic innovation. This review highlights the need for multidisciplinary approaches to advance molecular electronics toward practical, high‐performance applications, balancing fundamental insights with scalable fabrication.
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