State Key Laboratory of Analytical Chemistry for Life Science and Collaborative Innovation Center of Chemistry for Life Sciences, School of Chemistry and Chemical Engineering, Nanjing University , Nanjing 210093, China.
Center for Bioelectronics and Biosensors, Biodesign Institute, Arizona State University , Tempe, Arizona 85287, United States.
ACS Nano. 2015 Dec 22;9(12):11574-81. doi: 10.1021/acsnano.5b05306. Epub 2015 Oct 12.
Measuring local heat generation and dissipation in nanomaterials is critical for understanding the basic properties and developing applications of nanomaterials, including photothermal therapy and joule heating of nanoelectronics. Several technologies have been developed to probe local temperature distributions in nanomaterials, but a sensitive thermal imaging technology with high temporal and spatial resolution is still lacking. Here, we describe plasmonic thermal microscopy (PTM) to image local heat generation and diffusion from nanostructures in biologically relevant aqueous solutions. We demonstrate that PTM can detect local temperature change as small as 6 mK with temporal resolution of 10 μs and spatial resolution of submicrons (diffraction limit). With PTM, we have successfully imaged photothermal generation from single nanoparticles and graphene pieces, studied spatiotemporal distribution of temperature surrounding a heated nanoparticle, and observed heating at defect sites in graphene. We further show that the PTM images are in quantitative agreement with theoretical simulations based on heat transport theories.
测量纳米材料中的局部热生成和耗散对于理解纳米材料的基本性质和开发应用至关重要,包括光热疗法和纳米电子学中的焦耳加热。已经开发了几种技术来探测纳米材料中的局部温度分布,但仍缺乏具有高时间和空间分辨率的灵敏热成像技术。在这里,我们描述了等离子体热显微镜 (PTM),用于在生物相关的水溶液中成像来自纳米结构的局部热生成和扩散。我们证明 PTM 可以检测到小至 6 mK 的局部温度变化,具有 10 μs 的时间分辨率和亚微米级 (衍射极限) 的空间分辨率。使用 PTM,我们成功地从单个纳米粒子和石墨烯片上成像了光热生成,研究了加热纳米粒子周围温度的时空分布,并观察到石墨烯中缺陷部位的加热。我们进一步表明,PTM 图像与基于热传输理论的理论模拟定量一致。