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结合同步辐射,利用扫描隧道显微镜直接观测X射线诱导的原子运动。

Direct observation of X-ray induced atomic motion using scanning tunneling microscope combined with synchrotron radiation.

作者信息

Saito Akira, Tanaka Takehiro, Takagi Yasumasa, Hosokawa Hiromasa, Notsu Hiroshi, Ohzeki Gozo, Tanaka Yoshihito, Kohmura Yoshiki, Akai-Kasaya Megumi, Ishikawa Tetsuya, Kuwahara Yuji, Kikuta Seishi, Aono Masakazu

机构信息

Department of Precision Science and Technology, Graduate School of Engineering, Osaka University, 2-1 Yamada-oka, Suita, Osaka 565-0871, Japan.

出版信息

J Nanosci Nanotechnol. 2011 Apr;11(4):2873-81. doi: 10.1166/jnn.2011.3916.

Abstract

X-ray induced atomic motion on a Ge(111)-c(2 x 8) clean surface at room temperature was directly observed with atomic resolution using a synchrotron radiation (SR)-based scanning tunneling microscope (STM) system under ultra high vacuum condition. The atomic motion was visualized as a tracking image by developing a method to merge the STM images before and after X-ray irradiation. Using the tracking image, the atomic mobility was found to be strongly affected by defects on the surface, but was not dependent on the incident X-ray energy, although it was clearly dependent on the photon density. The atomic motion can be attributed to surface diffusion, which might not be due to core-excitation accompanied with electronic transition, but a thermal effect by X-ray irradiation. The crystal surface structure was possible to break even at a lower photon density than the conventionally known barrier. These results can alert X-ray studies in the near future about sample damage during measurements, while suggesting the possibility of new applications. Also the obtained results show a new availability of the in-situ SR-STM system.

摘要

在超高真空条件下,利用基于同步辐射(SR)的扫描隧道显微镜(STM)系统,以原子分辨率直接观察了室温下X射线在Ge(111)-c(2×8)清洁表面上诱导的原子运动。通过开发一种合并X射线照射前后STM图像的方法,将原子运动可视化为跟踪图像。利用该跟踪图像发现,原子迁移率受表面缺陷的强烈影响,但不依赖于入射X射线能量,尽管它明显依赖于光子密度。原子运动可归因于表面扩散,这可能不是由伴随电子跃迁的芯激发引起的,而是X射线照射的热效应。即使在比传统已知阈值更低的光子密度下,晶体表面结构也有可能被破坏。这些结果可以提醒在不久的将来进行X射线研究时注意测量过程中的样品损伤,同时暗示了新应用的可能性。此外,所获得的结果还展示了原位SR-STM系统的新用途。

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