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离子嵌入手性陶瓷纳米粒子的电压调制解扭曲变形和多光谱光学效应。

Voltage-Modulated Untwist Deformations and Multispectral Optical Effects from Ion Intercalation into Chiral Ceramic Nanoparticles.

机构信息

Department of Chemical Engineering, University of Michigan, Ann Arbor, MI, 48109, USA.

Biointerfaces Institute, University of Michigan, Ann Arbor, MI, 48109, USA.

出版信息

Adv Mater. 2023 Apr;35(16):e2206956. doi: 10.1002/adma.202206956. Epub 2023 Mar 16.

Abstract

Reconfiguration of chiral ceramic nanostructures after ion intercalation should favor specific nanoscale twists leading to strong chiroptical effects.  In this work, V O nanoparticles are shown to have "built-in" chiral distortions caused by binding of tartaric acid enantiomers to the nanoparticle surface. As evidenced by spectroscopy/microscopy techniques and calculations of nanoscale chirality measures, the intercalation of Zn ions into the V O lattice results in particle expansion, untwist deformations, and chirality reduction. Coherent deformations in the particle ensemble manifest as changes in sign and positions of circular polarization bands at ultraviolet, visible, mid-infrared (IR), near-IR (NIR), and IR wavelengths. The g-factors observed for IR and NIR spectral diapasons are ≈100-400 times higher than those for previously reported dielectric, semiconductor, and plasmonic nanoparticles. Nanocomposite films layer-by-layer assembled (LBL) from V O nanoparticles reveal cyclic-voltage-driven modulation of optical activity. Device prototypes for IR and NIR range problematic for liquid crystals and other organic materials are demonstrated. High optical activity, synthetic simplicity, sustainable processability, and environmental robustness of the chiral LBL nanocomposites provide a versatile platform for photonic devices. Similar reconfigurations of particle shapes are expected for multiple chiral ceramic nanostructures, leading to unique optical, electrical, and magnetic properties.

摘要

手性陶瓷纳米结构在离子嵌入后的重构应该有利于特定的纳米级扭曲,从而产生强手性光学效应。在这项工作中,证明了 V O 纳米颗粒由于酒石酸对映异构体与纳米颗粒表面的结合而具有“内置”手性扭曲。通过光谱/显微镜技术和纳米级手性度量的计算证明,Zn 离子嵌入 V O 晶格会导致颗粒膨胀、解扭曲和手性降低。颗粒集合体中的相干变形表现为在紫外、可见、中红外(IR)、近红外(NIR)和 IR 波长处圆偏振带的符号和位置发生变化。在观察到的 IR 和 NIR 光谱频带中,g 因子比以前报道的介电、半导体和等离子体纳米颗粒高约 100-400 倍。由 V O 纳米颗粒逐层组装(LBL)的纳米复合薄膜显示出光活性的循环电压驱动调制。展示了针对 IR 和 NIR 范围的器件原型,这些范围对于液晶和其他有机材料来说是有问题的。手性 LBL 纳米复合材料的高光学活性、合成简单性、可持续加工性和环境稳健性为光子器件提供了一个通用平台。预计多种手性陶瓷纳米结构也会发生类似的颗粒形状重构,从而产生独特的光学、电学和磁学性质。

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