Center for Functional Nanomaterials, Brookhaven National Laboratory, Brookhaven Avenue, Upton, New York 11973, United States.
The Molecular Foundry, Lawrence Berkeley National Laboratory, 1 Cyclotron Road, Berkeley, California 94720, United States.
J Am Chem Soc. 2022 May 11;144(18):8138-8152. doi: 10.1021/jacs.2c00743. Epub 2022 Apr 22.
Controlling the interfaces and interactions of colloidal nanoparticles (NPs) via tethered molecular moieties is crucial for NP applications in engineered nanomaterials, optics, catalysis, and nanomedicine. Despite a broad range of molecular types explored, there is a need for a flexible approach to rationally vary the chemistry and structure of these interfacial molecules for controlling NP stability in diverse environments, while maintaining a small size of the NP molecular shell. Here, we demonstrate that low-molecular-weight, bifunctional comb-shaped, and sequence-defined peptoids can effectively stabilize gold NPs (AuNPs). The generality of this robust functionalization strategy was also demonstrated by coating of silver, platinum, and iron oxide NPs with designed peptoids. Each peptoid (PE) is designed with varied arrangements of a multivalent AuNP-binding domain and a solvation domain consisting of oligo-ethylene glycol (EG) branches. Among designs, a peptoid (PE5) with a diblock structure is demonstrated to provide a superior nanocolloidal stability in diverse aqueous solutions while forming a compact shell (∼1.5 nm) on the AuNP surface. We demonstrate by experiments and molecular dynamics simulations that PE5-coated AuNPs (PE5/AuNPs) are stable in select organic solvents owing to the strong PE5 (amine)-Au binding and solubility of the oligo-EG motifs. At the vapor-aqueous interface, we show that PE5/AuNPs remain stable and can self-assemble into ordered 2D lattices. The NP films exhibit strong near-field plasmonic coupling when transferred to solid substrates.
通过连接的分子基团来控制胶体纳米粒子(NPs)的界面和相互作用对于将 NPs 应用于工程纳米材料、光学、催化和纳米医学至关重要。尽管已经探索了广泛的分子类型,但需要一种灵活的方法来合理改变这些界面分子的化学和结构,以控制 NP 在不同环境中的稳定性,同时保持 NP 分子壳的小尺寸。在这里,我们证明了低分子量、双功能梳状和序列定义的肽可以有效地稳定金纳米颗粒(AuNPs)。通过用设计的肽对银、铂和氧化铁 NPs 进行涂层,也证明了这种强大的功能化策略的通用性。每个肽(PE)都设计有不同排列的多价 AuNP 结合域和由聚乙二醇(EG)支链组成的溶剂化域。在设计中,具有二嵌段结构的肽(PE5)被证明在各种水溶液中提供卓越的纳米胶体稳定性,同时在 AuNP 表面形成紧凑的壳(约 1.5nm)。我们通过实验和分子动力学模拟证明,由于 PE5(胺)-Au 结合的强和寡 EG 基序的溶解性,PE5 包覆的 AuNPs(PE5/AuNPs)在选定的有机溶剂中是稳定的。在汽-水界面上,我们表明 PE5/AuNPs 保持稳定并且可以自组装成有序的二维晶格。当转移到固体基底上时,NP 薄膜表现出强烈的近场等离子体耦合。