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Imaging thermal conductivity with nanoscale resolution using a scanning spin probe

机译:使用扫描自旋探针以纳米级分辨率成像热导率

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摘要

The ability to probe nanoscale heat flow in a material is often limited by lack of spatial resolution. Here, we use a diamond-nanocrystal-hosted nitrogen-vacancy centre attached to the apex of a silicon thermal tip as a local temperature sensor. We apply an electrical current to heat up the tip and rely on the nitrogen vacancy to monitor the thermal changes the tip experiences as it is brought into contact with surfaces of varying thermal conductivity. By combining atomic force and confocal microscopy, we image phantom microstructures with nanoscale resolution, and attain excellent agreement between the thermal conductivity and topographic maps. The small mass and high thermal conductivity of the diamond host make the time response of our technique short, which we demonstrate by monitoring the tip temperature upon application of a heat pulse. Our approach promises multiple applications, from the investigation of phonon dynamics in nanostructures to the characterization of heterogeneous phase transitions and chemical reactions in various solid-state systems.
机译:缺乏空间分辨率通常会限制探测材料中纳米级热流的能力。在这里,我们使用附着在硅热尖端顶部的金刚石纳米晶体承载的氮空位中心作为局部温度传感器。我们施加电流加热烙铁头,并依靠氮气的空缺来监测烙铁头与热导率变化的表面接触时所经历的热变化。通过结合原子力和共聚焦显微镜,我们可以成像具有纳米级分辨率的幻像微观结构,并在导热系数和地形图之间达到极好的一致性。金刚石主体的小质量和高导热率使我们的技术的时间响应变短,这是通过在施加热脉冲时监测尖端温度来证明的。从研究纳米结构中的声子动力学到表征各种固态系统中的异相转变和化学反应,我们的方法有望实现多种应用。

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