Laboratory of Photonic Information Technology, School for Information and Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510006, People's Republic of China.
ACS Nano. 2012 Feb 28;6(2):1268-77. doi: 10.1021/nn203979n. Epub 2012 Feb 10.
Gold (Au) nanoparticles, particularly nanorods, are actively employed as imaging probes because of their special nonblinking and nonbleaching absorption, scattering, and emitting properties that arise from the excitation of surface plasmons. Herein, we report a novel sensing method that detects feature orientation at the nanoscale via the defocused imaging of individual Au nanorods (AuNRs) with an ordinary wide-field optical microscope. By simultaneously recording defocused images and two-photon luminescence intensities for a large number of individual AuNRs, we correlate their defocused images with their three-dimensional spatial orientations. The spatial orientation of many individual AuNRs can be monitored in situ and in real-time within a single frame, enabling its use as a technique for high-throughput sensing. The probe size can be as small as several nanometers, which is highly desirable for minimization of any potential interference from the probe itself. Furthermore, the sensing property is insensitive to the excitation polarization and the distribution of the probe aspect ratio, which allows AuNRs of any length within a proper regime to be used as orientation sensors without changing the laser frequency and polarization. These unique features make the orientation probes proposed here outstanding candidates for optical imaging and sensing in materials science and biological applications.
金(Au)纳米粒子,特别是纳米棒,由于其表面等离激元激发产生的特殊非闪烁和非漂白的吸收、散射和发射特性,被积极用作成像探针。在此,我们报告了一种通过使用普通宽场光学显微镜对单个 Au 纳米棒(AuNRs)进行离焦成像来检测纳米尺度特征取向的新型传感方法。通过同时记录大量单个 AuNRs 的离焦图像和双光子荧光强度,我们将它们的离焦图像与其三维空间取向相关联。可以在单个帧内原位实时监测许多单个 AuNRs 的空间取向,使其成为高通量传感的技术。探针尺寸可以小至几个纳米,这对于最小化探针本身的任何潜在干扰非常理想。此外,传感特性对激发偏振和探针纵横比分布不敏感,这允许在适当的范围内使用任何长度的 AuNR 作为取向传感器,而无需改变激光频率和偏振。这些独特的特性使这里提出的取向探针成为材料科学和生物应用中光学成像和传感的优秀候选者。