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Probing the size dependence on the optical modes of anatase nanoplatelets using STEM-EELS

机译:探索大小对光学模式的依赖锐钛矿的使用STEM-EELS nanoplatelets

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Anatase titania nanoplatelets with predominantly exposed {001} facets have been reported to have enhanced catalytic properties in comparison with bulk anatase. To understand their unusual behaviour, it is essential to fully characterize their electronic and optical properties at the nanometer scale. One way of assessing these fundamental properties is to study the dielectric function. Valence electron energy-loss spectroscopy (EELS) performed using a scanning transmission electron microscope (STEM) is the only analytical method that can probe the complex dielectric function with both high energy (<100 meV) and high spatial (<1 nm) resolution. By correlating experimental STEM-EELS data with simulations based on semi-classical dielectric theory, the dielectric response of thin (<5 nm) anatase nanoplatelets was found to be largely dominated by characteristic (optical) surface modes, which are linked to surface plasmon modes of anatase. For platelets less than 10 nm thick, the frequency of these optical modes varies according to their thickness. This unique optical behaviour prompts the enhancement of light absorption in the ultraviolet regime. Finally, the effect of finite size on the dielectric signal is gradually lost by stacking consistently two or more platelets in a specific crystal orientation, and eventually suppressed for large stacks of platelets.
机译:锐钛矿二氧化钛nanoplatelets为主暴露的{001}面已报告增强催化相比,属性锐钛矿。行为,有必要充分描述他们的电子和光学性质纳米尺度。基本性质是研究介质函数。使用扫描光谱(鳗鱼)执行透射电子显微镜(杆)只有分析方法可以探测复杂介电函数与高能(< 100兆电子伏)和高空间分辨率(< 1海里)。相关实验STEM-EELS数据基于半经典介质的模拟的介电响应理论,薄(< 5海里)锐钛矿nanoplatelets很大程度上被发现由特征(光学)表面模式,都与表面等离子体模式锐钛矿。这些光学模式的频率不同根据他们的厚度。行为提示光的增强吸收紫外线的政权。有限尺寸介质上的影响信号被堆积逐渐失去两个或两个以上的血小板在一个特定的晶体大的方向,最终抑制成堆的血小板。

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