Department of Chemistry and Biochemistry, Ohio University, Athens, Ohio 45701, USA.
Nanoscale. 2018 Jan 18;10(3):941-948. doi: 10.1039/c7nr08349a.
In this paper, we introduce a new optical temperature and thermal imaging technique combining near-field microscopy and Er photoluminescence thermometry. The tip aperture of 120 nm limits the spatial resolution of near-field thermal imaging. We use the technique with two different approaches towards local temperature measurement and thermal imaging. In the first approach, gold nanostructures on top of AlGaN thin film embedded with Er ions are optically excited through the SNOM tip with 532 nm CW laser to generate thermal images that have a Gaussian thermal profile because heating and probing are done through a single tip aperture. In the second approach, nanostructures on top of thermal sensor film of AlGaN : Er ions deposited on a transparent sapphire substrate are excited with 532 nm CW laser through the substrate with a large spot size (FWHM ∼10 μm) and Er emission from the film is collected in transmission mode through the SNOM tip. We use this approach to measure steady-state thermal profiles from optically excited different sized clusters made from 40 nm gold nanoparticles. This approach yields steady-state thermal profiles that have inverse distance temperature decay away from the cluster and we find that the maximum temperature change and temperature decay length into the surrounding medium (r) scales with cluster radius.
在本文中,我们介绍了一种新的光学温度和热成像技术,该技术结合了近场显微镜和 Er 光致发光测温技术。120nm 的尖端孔径限制了近场热成像的空间分辨率。我们使用两种不同的方法进行局部温度测量和热成像。在第一种方法中,通过 SNOM 尖端用 532nmCW 激光对嵌入 Er 离子的 AlGaN 薄膜上的金纳米结构进行光学激发,以产生具有高斯热分布的热图像,因为加热和探测都是通过单个尖端孔径进行的。在第二种方法中,通过基底用 532nmCW 激光激发沉积在透明蓝宝石衬底上的 AlGaN:Er 离子热传感器薄膜上的纳米结构,通过 SNOM 尖端以传输模式收集来自薄膜的 Er 发射。我们使用这种方法来测量由 40nm 金纳米粒子组成的不同尺寸的簇的稳态热分布。这种方法得到的稳态热分布从簇开始呈现出反向距离的温度衰减,我们发现最大温度变化和温度衰减长度与簇半径成比例。