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首页> 外文期刊>Nature Chemistry >Low-energy spectrum of iron-sulfur clusters directly from many-particle quantum mechanics
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Low-energy spectrum of iron-sulfur clusters directly from many-particle quantum mechanics

机译:直接由多粒子量子力学得出的铁硫团簇的低能谱

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摘要

Iron-sulfur clusters are a universal biological motif. They carry out electron transfer, redox chemistry and even oxygen sensing, in diverse processes including nitrogen fixation, respiration and photosynthesis. Their low-lying electronic states are key to their remarkable reactivity, but they cannot be directly observed. Here, we present the first ever quantum calculation of the electronic levels of [2Fe-2S] and [4Fe-4S] clusters free from any model assumptions. Our results highlight the limitations of long-standing models of their electronic structure. In particular, we demonstrate that the widely used Heisenberg double exchange model underestimates the number of states by one to two orders of magnitude, which can conclusively be traced to the absence of Fe d→d excitations, thought to be important in these clusters. Furthermore, the electronic energy levels of even the same spin are dense on the scale of vibrational fluctuations and this provides a natural explanation for the ubiquity of these clusters in catalysis in nature.
机译:铁-硫簇是普遍的生物基序。它们在包括固氮,呼吸和光合作用在内的各种过程中进行电子转移,氧化还原化学反应甚至是氧传感。它们的低电子态是其出色反应性的关键,但无法直接观察到。在这里,我们介绍了[2Fe-2S]和[4Fe-4S]团簇的电子能级的首次量子计算,没有任何模型假设。我们的结果突出了其电子结构的长期模型的局限性。特别是,我们证明了广泛使用的海森堡双交换模型低估了状态数量一到两个数量级,这可以最终归因于不存在Fe d→d激发,这在这些簇中很重要。此外,即使是相同自旋的电子能级在振动波动的范围内也是密集的,这自然解释了这些簇在催化中的普遍性。

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