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A unique art purifying the atomic scale, zone selective, and quantitative information of bonding and electronic dynamics at sites surrounding defects, surfaces, and interfaces

机译:一种独特的技术,可净化缺陷,表面和界面周围的原子键合,电子选择性和键合的原子尺度,区域选择性和定量信息

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With the theory[1–4] enabled technology, we have been able to purify information from zones up to two atomic spacings regarding the evolution of the bond length, bond strength, energy density, and the energetic behavior of the localized core and valence electrons by filtering out the bulk and background information, which enabled us to identify the direction of charge flow in the catalytic reactions between the gaseous specimens and the Rh and Pt adatoms catalysts,[5] and between the gaseous specimens and the CuPd and AgPd nanoalloys.[6] With the special technique, we have also been able to clarify that the Dirac-Fermi polarons detected using STM/S as high protrusions with resonance at Fermi energy as arising from the polarization of the unpaired dangling-bond electrons by the undercoordination-induced local densification and quantum entrapment of the energetically low-lying electrons, which in turn screen and split the crystal potential adding another extra component in the upper edge of the core band.
机译:利用理论[1-4]启用的技术,我们已经能够从最多两个原子间距的区域中纯化出有关键长,键强度,能量密度以及局部核和价电子的能级演化的信息。通过滤除大量和背景信息,这使我们能够确定气态样品与Rh和Pt吸附原子催化剂之间[5]以及气态样品与CuPd和AgPd纳米合金之间的催化反应中电荷流动的方向。 [6]通过特殊技术,我们还能够阐明使用STM / S检测到的Dirac-Fermi极化子是费米能量共振的高突起,这是由于配位不足引起的局部致密化引起的未成对的悬挂键电子的极化。以及低能电子的量子俘获,这反过来屏蔽并分裂了晶体电势,从而在芯带的上边缘添加了另一个额外的成分。

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