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模块化无机晶体中电子结构的静电控制

Electrostatic Control of Electronic Structure in Modular Inorganic Crystals.

作者信息

Ogawa Kanta, Walsh Aron

机构信息

Department of Materials, Imperial College London, London SW7 2AZ, U.K.

出版信息

J Am Chem Soc. 2025 Jan 8;147(1):821-829. doi: 10.1021/jacs.4c13637. Epub 2024 Dec 19.

Abstract

The rules that govern structure and bonding, established for elemental solids and simple compounds, are challenging to apply to more complex crystals formed of polyatomic building blocks, such as layered or framework materials. Whether these modular building blocks are electrically neutral or charged influences the physical properties of the resulting crystal. Despite the prevalence of alternating charged units, their effects on the electronic structure remain unclear. We demonstrate how the distribution of charged building blocks, driven by differences in the electrostatic potential, governs the electronic band energies formed in layered crystals. This coarse-grained model predicts the spatially separated valence and conduction band edges observed in the metal-oxyhalide BaBiNbOCl and explains observed property trends in the Sillén-Aurivillius crystal system. Moreover, the general nature of the model allows for extension to other modular structure types, illustrated for Sillén and Ruddlesden-Popper layered compounds, and can support the rational design of electronic properties in diverse materials.

摘要

为元素固体和简单化合物建立的支配结构和键合的规则,应用于由多原子构建块形成的更复杂晶体(如层状或骨架材料)时具有挑战性。这些模块化构建块是电中性还是带电会影响所得晶体的物理性质。尽管交替带电单元普遍存在,但其对电子结构的影响仍不明确。我们展示了由静电势差异驱动的带电构建块的分布如何支配层状晶体中形成的电子能带能量。这个粗粒度模型预测了在金属卤氧化物BaBiNbOCl中观察到的空间分离的价带和导带边缘,并解释了在西伦 - 奥里维利乌斯晶体系统中观察到的性质趋势。此外,该模型的一般性允许扩展到其他模块化结构类型,以西伦和鲁德尔斯登 - 波珀层状化合物为例进行说明,并且可以支持对各种材料电子性质的合理设计。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/12c7/11726560/ae6982ba38dc/ja4c13637_0001.jpg

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