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弱耦合卟啉二聚体中的电荷与自旋转移动力学

Charge and Spin Transfer Dynamics in a Weakly Coupled Porphyrin Dimer.

作者信息

Kopp Sebastian M, Redman Ashley J, Rončević Igor, Schröder Lisa, Bogani Lapo, Anderson Harry L, Timmel Christiane R

机构信息

Centre for Advanced Electron Spin Resonance, Department of Chemistry, University of Oxford, Oxford, OX1 3QR, U.K.

Chemistry Research Laboratory, Department of Chemistry, University of Oxford, Oxford, OX1 3TA, U.K.

出版信息

J Am Chem Soc. 2024 Aug 7;146(31):21476-21489. doi: 10.1021/jacs.4c04186. Epub 2024 Jul 23.

Abstract

The dynamics of electron and spin transfer in the radical cation and photogenerated triplet states of a tetramethylbiphenyl-linked zinc-porphyrin dimer were investigated, so as to test the relevant parameters for the design of a single-molecule spin valve and the creation of a novel platform for the photogeneration of high-multiplicity spin states. We used a combination of multiple techniques, including variable-temperature continuous wave EPR, pulsed proton electron-nuclear double resonance (ENDOR), transient EPR, and optical spectroscopy. The conclusions are further supported by density functional theory (DFT) calculations and comparison to reference compounds. The low-temperature cw-EPR and room-temperature near-IR spectra of the dimer monocation demonstrate that the radical cation is spatially localized on one side of the dimer at any point in time, not coherently delocalized over both porphyrin units. The EPR spectra at 298 K reveal rapid hopping of the radical spin density between both sites of the dimer via reversible intramolecular electron transfer. The hyperfine interactions are modulated by electron transfer and can be quantified using ENDOR spectroscopy. This allowed simulation of the variable-temperature cw-EPR spectra with a two-site exchange model and provided information on the temperature-dependence of the electron transfer rate. The electron transfer rates range from about 10.0 MHz at 200 K to about 53.9 MHz at 298 K. The activation enthalpies Δ of the electron transfer were determined as Δ = 9.55 kJ mol and Δ = 5.67 kJ mol in a 1:1:1 solvent mixture of CDCl/toluene-/THF- and in 2-methyltetrahydrofuran, respectively, consistent with a Robin-Day class II mixed valence compound. These results indicate that the interporphyrin electronic coupling in a tetramethylbiphenyl-linked porphyrin dimer is suitable for the backbone of a single-molecule spin valve. Investigation of the spin density distribution of the photogenerated triplet state of the Zn-porphyrin dimer reveals localization of the triplet spin density on a nanosecond time scale on one-half of the dimer at 20 K in 2-methyltetrahydrofuran and at 250 K in a polyvinylcarbazole film. This establishes the porphyrin dimer as a molecular platform for the formation of a localized, photogenerated triplet state on one porphyrin unit that is coupled to a second redox-active, ground-state porphyrin unit, which can be explored for the formation of high-multiplicity spin states.

摘要

研究了四甲基联苯连接的锌卟啉二聚体的自由基阳离子和光生三重态中的电子和自旋转移动力学,以测试单分子自旋阀设计的相关参数,并创建一个用于光生高多重性自旋态的新型平台。我们使用了多种技术的组合,包括变温连续波电子顺磁共振(EPR)、脉冲质子电子 - 核双共振(ENDOR)、瞬态EPR和光谱学。密度泛函理论(DFT)计算以及与参考化合物的比较进一步支持了这些结论。二聚体单阳离子的低温连续波EPR和室温近红外光谱表明,自由基阳离子在任何时刻都在空间上定位于二聚体的一侧,而不是在两个卟啉单元上相干离域。298 K时的EPR光谱揭示了自由基自旋密度通过可逆的分子内电子转移在二聚体的两个位点之间快速跳跃。超精细相互作用通过电子转移进行调制,并且可以使用ENDOR光谱进行量化。这允许使用双位点交换模型模拟变温连续波EPR光谱,并提供有关电子转移速率的温度依赖性的信息。电子转移速率范围从200 K时的约10.0 MHz到298 K时的约53.9 MHz。在CDCl₃/甲苯/四氢呋喃的1:1:1溶剂混合物和2 - 甲基四氢呋喃中,电子转移的活化焓Δ分别确定为Δ = 9.55 kJ/mol和Δ = 5.67 kJ/mol,这与罗宾 - 戴II类混合价化合物一致。这些结果表明,四甲基联苯连接的卟啉二聚体中的卟啉间电子耦合适用于单分子自旋阀的骨架。对锌卟啉二聚体光生三重态的自旋密度分布的研究表明,在2 - 甲基四氢呋喃中20 K以及在聚乙烯咔唑薄膜中250 K时,三重态自旋密度在纳秒时间尺度上定位于二聚体的一半。这确立了卟啉二聚体作为一个分子平台,用于在一个卟啉单元上形成局域化的光生三重态,该三重态与第二个具有氧化还原活性的基态卟啉单元耦合,可用于探索高多重性自旋态的形成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/43b0/11311228/dd5138a40cb9/ja4c04186_0001.jpg

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