Li Peihui, Zhou Li, Zhao Cong, Ju Hongyu, Gao Qinghua, Si Wei, Cheng Li, Hao Jie, Li Mengmeng, Chen Yijian, Jia Chuancheng, Guo Xuefeng
Center of Single-Molecule Sciences, Institute of Modern Optics, Frontiers Science Center for New Organic Matter, Tianjin Key Laboratory of Micro-Scale Optical Information Science and Technology, College of Electronic Information and Optical Engineering, Nankai University, 38 Tongyan Road, Jinnan District, Tianjin 300350, People's Republic of China.
School of Pharmaceutical Science and Technology, Tianjin University, 92 Weijin Road, Nankai District, Tianjin 300072, People's Republic of China.
Rep Prog Phys. 2022 Jul 8;85(8). doi: 10.1088/1361-6633/ac7401.
Single-molecule optoelectronic devices promise a potential solution for miniaturization and functionalization of silicon-based microelectronic circuits in the future. For decades of its fast development, this field has made significant progress in the synthesis of optoelectronic materials, the fabrication of single-molecule devices and the realization of optoelectronic functions. On the other hand, single-molecule optoelectronic devices offer a reliable platform to investigate the intrinsic physical phenomena and regulation rules of matters at the single-molecule level. To further realize and regulate the optoelectronic functions toward practical applications, it is necessary to clarify the intrinsic physical mechanisms of single-molecule optoelectronic nanodevices. Here, we provide a timely review to survey the physical phenomena and laws involved in single-molecule optoelectronic materials and devices, including charge effects, spin effects, exciton effects, vibronic effects, structural and orbital effects. In particular, we will systematically summarize the basics of molecular optoelectronic materials, and the physical effects and manipulations of single-molecule optoelectronic nanodevices. In addition, fundamentals of single-molecule electronics, which are basic of single-molecule optoelectronics, can also be found in this review. At last, we tend to focus the discussion on the opportunities and challenges arising in the field of single-molecule optoelectronics, and propose further potential breakthroughs.
单分子光电器件有望为未来基于硅的微电子电路的小型化和功能化提供一种潜在的解决方案。在其几十年的快速发展过程中,该领域在光电子材料的合成、单分子器件的制造以及光电子功能的实现方面都取得了显著进展。另一方面,单分子光电器件为在单分子水平上研究物质的内在物理现象和调控规律提供了一个可靠的平台。为了进一步实现并调控光电子功能以用于实际应用,有必要阐明单分子光电子纳米器件的内在物理机制。在此,我们适时地进行综述,以审视单分子光电子材料和器件中涉及的物理现象和规律,包括电荷效应、自旋效应、激子效应、振动电子效应、结构和轨道效应。特别地,我们将系统地总结分子光电子材料的基础知识,以及单分子光电子纳米器件的物理效应和操控方法。此外,作为单分子光电子学基础的单分子电子学的基本原理,在本综述中也能找到。最后,我们倾向于聚焦讨论单分子光电子学领域中出现的机遇和挑战,并提出进一步潜在的突破方向。