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- W2058754861 abstract "Copper oxide superconductors do not superconduct unless electrons or holes are added to the parent compounds. A theoretical study reveals how the electrons or holes affect the host material microscopically in an asymmetric way. The introduction of holes in a parent compound consisting of copper oxide layers results in high-temperature superconductivity. It is also possible to dope the cuprate parent compound with electrons1,2,3. The physical properties of these electron-doped materials bear some similarities to but also significant differences from those of their hole-doped counterparts. Here, we use a recently developed first-principles method4 to study the electron-doped cuprates and elucidate the deep physical reasons behind their behaviour being so different from that of the hole-doped materials. The crystal structure of the electron-doped compounds is characterized by a lack of apical oxygens, and we find that it results in a parent compound that is a Slater insulator—a material in which the insulating behaviour is the result of the presence of magnetic long-range order. This is in sharp contrast with the hole-doped materials, which are insulating owing to the strong electronic correlations but not owing to magnetism." @default.
- W2058754861 created "2016-06-24" @default.
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- W2058754861 date "2010-06-27" @default.
- W2058754861 modified "2023-10-16" @default.
- W2058754861 title "Strength of correlations in electron- and hole-doped cuprates" @default.
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- W2058754861 doi "https://doi.org/10.1038/nphys1706" @default.
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