Ha In Han, Van Gordon Kyle, Girod Robin, Han Jeong Hyun, Vlasov Evgenii, Baúlde Sandra, Mosquera Jesús, Nam Ki Tae, Bals Sara, Liz-Marzán Luis M
Department of Materials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea.
CIC biomaGUNE, Basque Research and Technology Alliance (BRTA), Donostia-San Sebastián 20014, Spain.
ACS Nano. 2025 Aug 12;19(31):28530-28539. doi: 10.1021/acsnano.5c07744. Epub 2025 Jul 31.
Chiral plasmonic nanomaterials display strong interactions with circularly polarized light, offering significant potential in chirality sensing, enantioselective catalysis, and biomedical applications. While recent advances in seeded-growth synthesis have yielded complex chiral gold nanostructures through chemically induced or micelle-directed growth mechanisms, detailed intercorrelated mechanisms remain elusive. In this context, we have systematically investigated the versatility of the chiral inducer 2-amino-N-decyl-3-mercaptopropanamide (LipoCYS), which incorporates both an amino acid moiety and an aliphatic chain designed to bridge both established mechanisms. By employing cubic and octahedral achiral gold seeds and varying the surfactant halides, along with the concentration of LipoCYS, we generated a wide range of chiral morphologies, from twisted helicoids to intricate wrinkled spheres and intermediate structures. Advanced electron microscopy, including electron tomography, enabled comprehensive three-dimensional characterization and revealed distinct chiral morphological transitions and their correlations with chiroptical properties. Excellent agreement was found with the simulation results, thereby validating the representativeness of the microscopic analysis. Our findings expand the synthetic toolbox available for the precise control of nanoparticle chirality, providing deeper insights into the mechanisms of chiral growth and enhancing their potential for tailored applications.
手性等离子体纳米材料与圆偏振光表现出强烈的相互作用,在手性传感、对映选择性催化和生物医学应用方面具有巨大潜力。虽然种子生长合成技术的最新进展通过化学诱导或胶束导向生长机制产生了复杂的手性金纳米结构,但详细的相互关联机制仍然难以捉摸。在此背景下,我们系统地研究了手性诱导剂2-氨基-N-癸基-3-巯基丙酰胺(LipoCYS)的多功能性,该诱导剂同时包含一个氨基酸部分和一个旨在连接两种既定机制的脂肪族链。通过使用立方和八面体非手性金种子,并改变表面活性剂卤化物以及LipoCYS的浓度,我们生成了从扭曲螺旋体到复杂的皱纹球体以及中间结构等多种手性形态。先进的电子显微镜,包括电子断层扫描,实现了全面的三维表征,并揭示了独特的手性形态转变及其与旋光性质的相关性。与模拟结果发现了极好的一致性,从而验证了微观分析的代表性。我们的研究结果扩展了可用于精确控制纳米颗粒手性的合成工具箱,为手性生长机制提供了更深入的见解,并增强了它们在定制应用中的潜力。