首页> 外文期刊>Microscopy and microanalysis: The official journal of Microscopy Society of America, Microbeam Analysis Society, Microscopical Society of Canada >Exploring Photothermal Pathways via in Situ Laser Heating in the Transmission Electron Microscope: Recrystallization, Grain Growth, Phase Separation, and Dewetting in Ag0.5Ni0.5 Thin Films
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Exploring Photothermal Pathways via in Situ Laser Heating in the Transmission Electron Microscope: Recrystallization, Grain Growth, Phase Separation, and Dewetting in Ag0.5Ni0.5 Thin Films

机译:通过在透射电子显微镜下原位激光加热探索光热通路:重结晶,晶粒生长,相分离和脱模在Ag0.5ni0.5薄膜中

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摘要

A new optical delivery system has been developed for the (scanning) transmission electron microscope. Here we describe the in situ and “rapid ex situ” photothermal heating modality of the system, which delivers >200 mW of optical power from a fiber-coupled laser diode to a 3.7 μm radius spot on the sample. Selected thermal pathways can be accessed via judicious choices of the laser power, pulse width, number of pulses, and radial position. The long optical working distance mitigates any charging artifacts and tremendous thermal stability is observed in both pulsed and continuous wave conditions, notably, no drift correction is applied in any experiment. To demonstrate the optical delivery system’s capability, we explore the recrystallization, grain growth, phase separation, and solid state dewetting of a Ag0.5Ni0.5 film. Finally, we demonstrate that the structural and chemical aspects of the resulting dewetted films was assessed.
机译:已经为(扫描)透射电子显微镜开发了新的光输送系统。 在这里,我们描述了系统的原位和“快速的EXITU”光热加热模态,其从纤维耦合激光二极管递送> 200mW的光学电源到样品上的3.7μm半径点。 可以通过激光功率,脉冲宽度,脉冲数和径向位置的明智选择来访问所选热路径。 在脉冲和连续波条件中,长光工作距离减轻了任何充电伪像和巨大的热稳定性,特别是在任何实验中都没有应用漂移校正。 为了证明光学输送系统的能力,我们探讨了AG0.5NI0.5薄膜的再结晶,晶粒生长,相分离和固态脱水。 最后,我们证明了评估所得脱膜的结构和化学方面。

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