Yan Chao, Wang Yiwen, Li Jiahui, Chen Xiaorui, Zhang Xin, Gao Jianzhi, Pan Minghu
School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710119, China.
School of Mathematics and Physics, Xinjiang Agricultural University, Urumqi 830052, China.
Nanomaterials (Basel). 2025 Aug 1;15(15):1184. doi: 10.3390/nano15151184.
Macrocyclic organic nanostructures have emerged as crucial components of functional supramolecular materials owing to their unique structural and chemical features, such as their distinctive "infinite" cyclic topology and tunable topology-dependent properties, attracting significant recent attention. However, the controlled synthesis of macrocyclic compounds with well-defined compositions and geometries remains a formidable challenge. On-surface synthesis, capable of constructing nanostructures with atomic precision on various substrates, has become a frontier technique for exploring novel macrocyclic architectures. This review summarizes the recent advances in the on-surface synthesis of macrocycles. It focuses on analyzing the synthetic mechanisms and conformational characterization of macrocycles formed through diverse bonding interactions, including both covalent and non-covalent linkages. This review elucidates the intricate interplay between the thermodynamic and kinetic factors governing macrocyclic structure formation across these bonding types and clarifies the critical influence of the reaction temperature and external conditions on the cyclization efficiency. Ultimately, this study offers design strategies for the precise on-surface synthesis of larger and more flexible macrocyclic compounds.
大环有机纳米结构因其独特的结构和化学特性,如独特的“无限”环状拓扑结构和可调的拓扑依赖性性质,已成为功能性超分子材料的关键组成部分,最近引起了广泛关注。然而,可控合成具有明确组成和几何形状的大环化合物仍然是一项艰巨的挑战。表面合成能够在各种基底上以原子精度构建纳米结构,已成为探索新型大环结构的前沿技术。本综述总结了大环化合物表面合成的最新进展。它着重分析了通过各种键合相互作用形成的大环化合物的合成机制和构象表征,包括共价键和非共价键。本综述阐明了控制这些键合类型的大环结构形成的热力学和动力学因素之间的复杂相互作用,并阐明了反应温度和外部条件对环化效率的关键影响。最终,本研究为精确表面合成更大、更灵活的大环化合物提供了设计策略。