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手性分子膜的自旋相关电离。

Spin-Dependent Ionization of Chiral Molecular Films.

机构信息

California NanoSystems Institute , University of California, Los Angeles , Los Angeles , California 90095 , United States.

Department of Chemistry & Biochemistry , University of California, Los Angeles , Los Angeles , California 90095 , United States.

出版信息

J Am Chem Soc. 2019 Mar 6;141(9):3863-3874. doi: 10.1021/jacs.8b08421. Epub 2019 Feb 20.

Abstract

Spin selectivity in photo-emission from ferromagnetic substrates functionalized with chiral organic films was analyzed by ultraviolet photoelectron spectroscopy at room temperature. Using radiation with photon energy greater than the ionization potential of the adsorbed molecules, photoelectrons were collected that originated from both underlying ferromagnetic substrates and the organic films, with kinetic energies in the range of ca. 0-18 eV. We investigated chiral organic films composed of self-assembled monolayers of α-helical peptides and electrostatically adsorbed films of the protein, bovine serum albumin, with different α-helix and β-sheet contents. Ultraviolet photoelectron spectral widths were found to depend on substrate magnetization orientation and polarization, which we attribute to helicity-dependent molecular ionization cross sections arising from photoelectron impact, possibly resulting in spin-polarized holes. These interactions between spin-polarized photoelectrons and chiral molecules are physically manifested as differences in the measured photoionization energies of the chiral molecular films. Substrate magnetization-dependent ionization energies and work function values were deconvoluted using surface charge neutralization techniques, permitting the measurement of relative spin-dependent energy barriers to transmission through chiral organic films.

摘要

通过室温下的紫外光电子能谱分析了功能化手性有机膜的铁磁衬底的光致发射中的自旋选择性。使用光子能量大于吸附分子的电离势的辐射,收集了源自铁磁衬底和有机膜的光电子,其动能在约 0-18 eV 的范围内。我们研究了由α-螺旋肽自组装单层和静电吸附的牛血清白蛋白蛋白组成的手性有机膜,其α-螺旋和β-折叠含量不同。发现紫外光电子能谱宽度取决于衬底磁化方向和极化,我们将其归因于光电电子冲击引起的与螺旋度相关的分子电离截面,可能导致自旋极化空穴。自旋极化光电子与手性分子之间的这些相互作用在物理上表现为手性分子膜的测量光致电离能的差异。使用表面电荷中和技术对衬底磁化依赖性的电离能和功函数值进行了反卷积,从而可以测量通过手性有机膜的相对自旋相关传输的能量势垒。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1f2f/6703823/be763686362b/nihms-1037726-f0001.jpg

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