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X-ray and vibrational spectroscopy of manganese complexes relevant to the oxygen evolving complex of photosynthesis.

机译:锰配合物的X射线和振动光谱与光合作用的放氧配合物有关。

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Manganese model complexes, relevant to the oxygen-evolving complex (OEC) in photosynthesis, were studied with Mn K-edge X-ray absorption near-edge spectroscopy (XANES), Mn Kβ X-ray emission spectroscopy (XES), and vibrational spectroscopy. A more detailed understanding was obtained of the influence of nuclearity, overall structure, oxidation state, and ligand environment of the Mn atoms on the spectra from these methods. This refined understanding is necessary for improving the interpretation of spectra of the OEC.; Mn XANES and Kβ XES were used to study a di-μ-oxo and a mono-μ-oxo di-nuclear Mn compound in the (III,III), and (III,IV) oxidation states. XANES spectra show energy shifts of 0.8–2.2 eV for 1-electron oxidation-state changes and 0.4–1.8 eV for ligand-environment changes. The shifts observed for Mn Kβ XES spectra were ∼0.21 eV for oxidation state-changes and only ∼0.04 eV for ligand-environment changes. This indicates that Mn Kβ XES is more sensitive to the oxidation state and less sensitive to the ligand environment of the Mn atoms than XANES. These complimentary methods provide information about the oxidation state and the ligand environment of Mn atoms in model compounds and biological systems.; A versatile spectroelectrochemical apparatus was designed to aid the interpretation of IR spectra of Mn compounds in different oxidation states. The design, based on an attenuated total reflection device, permits the study of a wide spectral range: 16,700 (600 nm)–2250 cm−1 and 1900–250 cm−1. A data collection protocol was introduced to deal with electrochemically non-reversible background signals. IR spectra of an adamantane-like tetra-nuclear Mn compound in two different oxidation states were obtained and analyzed by normal-mode analysis. Bridging Mn-O vibrational modes were identified by isotopic exchange (16O → 18O) in the 750–650 cm−1 and 520–460 cm−1 ranges for the MnIV4 and MnIIIMnIV3 species. These vibrational modes are in the same spectral range as modes that have been observed for the OEC. Using S4 symmetry for the MnIV4 species and Cs symmetry for the MnIIIMnIV 3 species, stretching force constants of 2.45 mdyn/Å, and 3.10 mdyn/Å were extracted for the MnIII-O and Mn IV-O bridging bonds, respectively.
机译:使用Mn K-边缘X射线吸收近边缘光谱法(XANES),MnKβX射线发射光谱法(XES)和振动光谱法研究了与光合作用中的放氧复合物(OEC)相关的锰模型复合物。 。通过这些方法,可以更详细地了解锰原子的核度,整体结构,氧化态和配体环境对光谱的影响。这种完善的理解对于改善OEC光谱的解释是必要的。 Mn XANES和KβXES用于研究处于(III,III)和(III,IV)氧化态的二μ-氧代和单μ-氧代双核Mn化合物。 XANES光谱显示,对于1电子氧化态变化,能量转移为0.8–2.2 eV,对于配体环境变化,能量转移为0.4–1.8 eV。 MnKβXES光谱的氧化态变化约为0.21 eV,配体环境变化约为0.04 eV。这表明MnKβXES比XANES对Mn的氧化态更敏感,对Mn原子的配体环境较不敏感。这些互补的方法提供了有关模型化合物和生物系统中Mn原子的氧化态和配体环境的信息。设计了一种通用的光谱电化学设备以帮助解释不同氧化态下Mn化合物的IR光谱。基于衰减全反射设备的设计允许研究较宽的光谱范围:16,700(600 nm)–2250 cm -1 和1900–250 cm -1 。引入了数据收集协议来处理电化学不可逆的背景信号。获得了两种不同氧化态的金刚烷样四核锰化合物的红外光谱,并通过正模分析进行了分析。通过同位素交换( 16 O→ 18 O)在750–650 cm -1 和520– Mn IV 4 和Mn III Mn IV 的460 cm −1 范围 3 种。这些振动模式与OEC所观察到的模式在相同的光谱范围内。使用Mn IV 4 物种的S 4 对称性和Mn III <的C s 对称性/ super> Mn IV 3 物种,提取Mn III -的拉伸力常数为2.45 mdyn /Å和3.10 mdyn /Å。 O和Mn IV -O桥键。

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