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氨基酸如何嵌入钙铁层状双氢氧化物:结合RIXS和NEXAFS的研究

How Amino Acids Intercalate in CaFe Layered Double Hydroxides: A Combined RIXS and NEXAFS Study.

作者信息

Büchner R, Born A, Ruotsalainen K, Decker R, Pietzsch A

机构信息

Institute Methods and Instrumentation for Synchrotron Radiation Research, Helmholtz Center Berlin for Materials and Energy, Albert-Einstein-Strasse 15, 12489, Berlin, Germany.

出版信息

Chemphyschem. 2025 Mar 15;26(6):e202400745. doi: 10.1002/cphc.202400745. Epub 2025 Jan 28.

Abstract

Two-dimensional layered double hydroxides (LDHs) are ideal candidates for a large number of (bio)catalytic applications due to their flexible composition and easy to tailor properties. Functionality can be achieved by intercalation of amino acids (as the basic units of peptides and proteins). To gain insight on the functionality, we apply resonant inelastic soft x-ray scattering and near edge x-ray absorption fine structure spectroscopy to CaFe LDH in its pristine form as well as intercalated with the amino acids proline and cysteine to probe the electronic structure and its changes upon intercalation. We observe the activation of pristine LDH defect states by soft x-rays and their passivation by the intercalated molecules. The nitrogen at the amino amino is found to form C=NH bonds and thus generating positive charge at the amino group, moving it away from the positively charged LDH layers. The carboxyl group in cysteine is deprotonated and thus in zwitterionic state after intercalation. This negative charge is used to compensate the positive layer charge. For intercalated proline the spectral signature of a protonated carboxyl group is observed, however, we find orbital overlap to defects at the layer surfaces indicating strong interaction with the carboxyl groups.

摘要

二维层状双氢氧化物(LDHs)因其灵活的组成和易于定制的性质,成为大量(生物)催化应用的理想候选材料。通过插入氨基酸(作为肽和蛋白质的基本单元)可以实现功能化。为了深入了解其功能,我们将共振非弹性软X射线散射和近边X射线吸收精细结构光谱应用于原始形式的CaFe LDH以及插入了脯氨酸和半胱氨酸的CaFe LDH,以探测电子结构及其在插入过程中的变化。我们观察到原始LDH缺陷态被软X射线激活,而插入分子使其钝化。发现氨基上的氮形成C=NH键,从而在氨基上产生正电荷,使其远离带正电的LDH层。半胱氨酸中的羧基去质子化,插入后处于两性离子状态。这种负电荷用于补偿层的正电荷。对于插入的脯氨酸,观察到质子化羧基的光谱特征,然而,我们发现其与层表面缺陷存在轨道重叠,表明与羧基有强烈相互作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4099/11913466/be0400fa132f/CPHC-26-e202400745-g002.jpg

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