纳米材料
等离子体子
纳米技术
材料科学
手性(物理)
合理设计
光子学
对映选择合成
物理
化学
催化作用
光电子学
生物化学
手征对称破缺
量子力学
夸克
Nambu–Jona Lasinio模型
作者
Lichao Sun,Yunlong Tao,Guizeng Yang,Chuang Liu,Xuehao Sun,Qingfeng Zhang
标识
DOI:10.1002/adma.202306297
摘要
Abstract Intrinsically chiral plasmonic nanomaterials exhibit intriguing geometry‐dependent chiroptical properties, which is due to the combination of plasmonic features with geometric chirality. Thus, chiral plasmonic nanomaterials have become promising candidates for applications in biosensing, asymmetric catalysis, biomedicine, photonics, etc. Recent advances in geometric control and optical tuning of intrinsically chiral plasmonic nanomaterials have further opened up a unique opportunity for their widespread applications in many emerging technological areas. Here, the recent developments in the geometric control of chiral plasmonic nanomaterials are reviewed with special attention given to the quantitative understanding of the chiroptical structure‐property relationship. Several important optical spectroscopic tools for characterizing the optical chirality of plasmonic nanomaterials at both ensemble and single‐particle levels are also discussed. Three emerging applications of chiral plasmonic nanomaterials, including enantioselective sensing, enantioselective catalysis, and biomedicine, are further highlighted. It is envisioned that these advanced studies in chiral plasmonic nanomaterials will pave the way toward the rational design of chiral nanomaterials with desired optical properties for diverse emerging technological applications.
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