Hole doping in a negative charge transfer insulator
arXiv:2202.13366
Abstract
NiO is a negative charge transfer energy system and exhibits a temperature-driven metal-insulator transition (MIT), which is also accompanied by a bond disproportionation (BD) transition. In order to explore how hole doping affects the BD transition, we have investigated the electronic structure of single-crystalline thin films of NdCaNiO by synchrotron based experiments and {\it ab-initio} calculations. For a small value of , we find that the doped holes are localized on one or more Ni sites around the dopant Ca ions, while the BD state for the rest of the lattice remains intact. The effective charge transfer energy () increases with Ca concentration and the formation of BD phase is not favored above a critical , suppressing the insulating phase. Our present study firmly demonstrates that the appearance of BD mode is essential for the MIT and settles a long-standing debate about the role of structural distortions for the MIT of the NiO series.
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