TY - CHAP
T1 - A Brief Introduction to Molecular Aggregates
AU - Wang, Jiaqiang
AU - Gu, Juqing
AU - Ye, Guigui
AU - Cao, Wei
AU - Wang, Meng
AU - Jiang, Changzun
AU - Li, Shuhui
AU - Huang, Arui
AU - Li, Qianqian
AU - Li, Zhen
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026/1/1
Y1 - 2026/1/1
N2 - Organic opto-electronic materials serve as the cornerstone of numerous advanced technologies, including data storage, photovoltaics, light-emitting devices, transistors, and bioimaging. The performance of these materials is significantly influenced by their molecular aggregation behaviors, which are governed by complex noncovalent interactions such as hydrogen bonding, π-π stacking, electrostatic forces, and hydrophobic effects. This chapter provides a foundational understanding of the motivations, historical development, and fundamental principles underlying molecular aggregation in organic opto-electronic systems. It introduces the key intermolecular forces that drive aggregation, their modulation strategies, and their impact on optical and electronic properties. The concept of Molecular Uniting Set Identified Characteristic (MUSIC) is discussed as a framework to elucidate structure-property relationships at the aggregated level. The chapter also highlights the critical role of molecular packing and aggregation forms, such as crystals, thin films, and nanoparticles, in determining material performance. By examining the molecular packing, orientation, and interactions within these materials, the MUSIC concept provides insights into optimizing performance and broadening the application of opto-electronic materials.
AB - Organic opto-electronic materials serve as the cornerstone of numerous advanced technologies, including data storage, photovoltaics, light-emitting devices, transistors, and bioimaging. The performance of these materials is significantly influenced by their molecular aggregation behaviors, which are governed by complex noncovalent interactions such as hydrogen bonding, π-π stacking, electrostatic forces, and hydrophobic effects. This chapter provides a foundational understanding of the motivations, historical development, and fundamental principles underlying molecular aggregation in organic opto-electronic systems. It introduces the key intermolecular forces that drive aggregation, their modulation strategies, and their impact on optical and electronic properties. The concept of Molecular Uniting Set Identified Characteristic (MUSIC) is discussed as a framework to elucidate structure-property relationships at the aggregated level. The chapter also highlights the critical role of molecular packing and aggregation forms, such as crystals, thin films, and nanoparticles, in determining material performance. By examining the molecular packing, orientation, and interactions within these materials, the MUSIC concept provides insights into optimizing performance and broadening the application of opto-electronic materials.
KW - molecular aggregation
KW - Molecular Uniting Set Identified Characteristic
KW - noncovalent interactions
KW - organic opto-electronic materials
KW - structure-property relationship
UR - https://www.scopus.com/pages/publications/105044075377
U2 - 10.1002/9783527833436.ch01
DO - 10.1002/9783527833436.ch01
M3 - 章节
AN - SCOPUS:105044075377
SN - 9783527349395
SP - 1
EP - 31
BT - Molecular Design of Opto-Electronic Materials
PB - wiley
ER -