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空间受限的低功率光泵浦超快同步加速器X射线纳米衍射

Spatially confined low-power optically pumped ultrafast synchrotron x-ray nanodiffraction.

作者信息

Park Joonkyu, Zhang Qingteng, Chen Pice, Cosgriff Margaret P, Tilka Jack A, Adamo Carolina, Schlom Darrell G, Wen Haidan, Zhu Yi, Evans Paul G

机构信息

Department of Materials Science and Engineering and Materials Science Program, University of Wisconsin-Madison, Madison, Wisconsin 53706, USA.

Department of Materials Science and Engineering, Cornell University, Ithaca, New York 14853, USA.

出版信息

Rev Sci Instrum. 2015 Aug;86(8):083904. doi: 10.1063/1.4929436.

Abstract

The combination of ultrafast optical excitation and time-resolved synchrotron x-ray nanodiffraction provides unique insight into the photoinduced dynamics of materials, with the spatial resolution required to probe individual nanostructures or small volumes within heterogeneous materials. Optically excited x-ray nanobeam experiments are challenging because the high total optical power required for experimentally relevant optical fluences leads to mechanical instability due to heating. For a given fluence, tightly focusing the optical excitation reduces the average optical power by more than three orders of magnitude and thus ensures sufficient thermal stability for x-ray nanobeam studies. Delivering optical pulses via a scannable fiber-coupled optical objective provides a well-defined excitation geometry during rotation and translation of the sample and allows the selective excitation of isolated areas within the sample. Experimental studies of the photoinduced lattice dynamics of a 35 nm BiFeO3 thin film on a SrTiO3 substrate demonstrate the potential to excite and probe nanoscale volumes.

摘要

超快光学激发与时间分辨同步加速器X射线纳米衍射相结合,为研究材料的光致动力学提供了独特视角,具备探测异质材料中单个纳米结构或小体积区域所需的空间分辨率。光激发X射线纳米束实验颇具挑战性,因为达到实验相关光通量所需的高总光功率会因加热导致机械不稳定。对于给定的光通量,将光激发紧密聚焦可使平均光功率降低三个数量级以上,从而确保X射线纳米束研究具有足够的热稳定性。通过可扫描的光纤耦合光学物镜传输光脉冲,在样品旋转和平移过程中提供了明确的激发几何结构,并允许对样品内孤立区域进行选择性激发。对生长在SrTiO3衬底上的35nm BiFeO3薄膜的光致晶格动力学进行的实验研究,证明了激发和探测纳米级体积的潜力。

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