Adsorbate-induced formation of a surface-polarity-driven nonperiodic superstructure.

IF 9.6 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Communications Materials Pub Date : 2025-01-01 Epub Date: 2025-07-01 DOI:10.1038/s43246-025-00851-x
Chi Ming Yim, Yu Zheng, Olivia R Armitage, Dibyashree Chakraborti, Craig J Wells, Seunghyun Khim, Andrew P Mackenzie, Peter Wahl
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引用次数: 0

Abstract

The chemical and electronic properties of surfaces and interfaces are important for many technologically relevant processes, be it in information processing, where interfacial electronic properties are crucial for device performance, or in catalytic processes, which depend on the types and densities of active nucleation sites for chemical reactions. Quasi-periodic and nonperiodic crystalline surfaces offer new opportunities because of their inherent inhomogeneity, resulting in localisation and properties vastly different from those of surfaces described by conventional Bravais lattices. Here, we demonstrate the formation of a nonperiodic tiling structure on the surface of the frustrated antiferromagnet PdCrO2 due to hydrogen adsorption. The tiling structure exhibits no long-range periodicity but comprises few-atom hexagonally packed domains covering large terraces. Measurement of the local density of states by tunnelling spectroscopy reveals adsorption-driven modifications to the quasi-2D electronic structure of the surface layer, showing exciting opportunities arising from electron localisation.

表面极性驱动的非周期上层结构的吸附诱导形成。
表面和界面的化学和电子性质对许多技术相关过程都很重要,无论是在信息处理中,界面电子性质对设备性能至关重要,还是在催化过程中,这取决于化学反应的活性成核位点的类型和密度。准周期和非周期晶体表面提供了新的机会,因为它们固有的不均匀性,导致局部化和性质与传统Bravais晶格描述的表面大不相同。在这里,我们证明了由于氢的吸附,在受挫反铁磁体PdCrO2表面形成了非周期性的平铺结构。平铺结构没有长周期的周期性,而是由覆盖大梯田的少原子六边形结构域组成。通过隧道光谱测量局域态密度揭示了吸附驱动的对表面层准二维电子结构的修饰,显示了电子局域化带来的激动人心的机会。
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来源期刊
Communications Materials
Communications Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
12.10
自引率
1.30%
发文量
85
审稿时长
17 weeks
期刊介绍: Communications Materials, a selective open access journal within Nature Portfolio, is dedicated to publishing top-tier research, reviews, and commentary across all facets of materials science. The journal showcases significant advancements in specialized research areas, encompassing both fundamental and applied studies. Serving as an open access option for materials sciences, Communications Materials applies less stringent criteria for impact and significance compared to Nature-branded journals, including Nature Communications.
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