Controlling the Band Filling and the Band Width in Nickelate Superconductors

Fuente: arXiv
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Bibliographic Details
Main Authors: Kriener, M., Terakura, C., Kikkawa, A., Liu, Z., Murayama, H., Nakajima, M., Fujishiro, Y., Sasano, S., Ishikawa, R., Shibata, N., Tokura, Y., Taguchi, Y.
Format: Preprint
Published: 2026
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author Kriener, M.
Terakura, C.
Kikkawa, A.
Liu, Z.
Murayama, H.
Nakajima, M.
Fujishiro, Y.
Sasano, S.
Ishikawa, R.
Shibata, N.
Tokura, Y.
Taguchi, Y.
author_facet Kriener, M.
Terakura, C.
Kikkawa, A.
Liu, Z.
Murayama, H.
Nakajima, M.
Fujishiro, Y.
Sasano, S.
Ishikawa, R.
Shibata, N.
Tokura, Y.
Taguchi, Y.
contents The new family of superconducting nickelates centered around La$_{3}$Ni$_{2}$O$_{7}$ possesses attractive features, such as the high transition temperature and the presence of an antiferromagnetic ground state at ambient pressure, suggesting an unconventional pairing mechanism. In the nonsuperconducting state, the possibility of different density-wave orders with opposite pressure dependencies is discussed, whose relationships and microscopic origins are largely unknown. However, sample-quality issues, such as impurity-phase formation or oxygen vacancies, impede the progress in the field. Here, we employ high-pressure synthesis and hydrostatic high-pressure transport techniques to investigate bilayer nickelates with controlled band width and filling, and perform a systematic study on their impact on the superconductivity and other characteristic properties. While increasing the tilting of the NiO$_6$ octahedra shifts the superconducting phase to higher pressure, simultaneous hole doping reverts this trend. We also observe up to three distinct anomalies in the nonsuperconducting state which are possibly related to density-wave formation.
format Preprint
id arxiv_https___arxiv_org_abs_2604_13875
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Controlling the Band Filling and the Band Width in Nickelate Superconductors
Kriener, M.
Terakura, C.
Kikkawa, A.
Liu, Z.
Murayama, H.
Nakajima, M.
Fujishiro, Y.
Sasano, S.
Ishikawa, R.
Shibata, N.
Tokura, Y.
Taguchi, Y.
Superconductivity
The new family of superconducting nickelates centered around La$_{3}$Ni$_{2}$O$_{7}$ possesses attractive features, such as the high transition temperature and the presence of an antiferromagnetic ground state at ambient pressure, suggesting an unconventional pairing mechanism. In the nonsuperconducting state, the possibility of different density-wave orders with opposite pressure dependencies is discussed, whose relationships and microscopic origins are largely unknown. However, sample-quality issues, such as impurity-phase formation or oxygen vacancies, impede the progress in the field. Here, we employ high-pressure synthesis and hydrostatic high-pressure transport techniques to investigate bilayer nickelates with controlled band width and filling, and perform a systematic study on their impact on the superconductivity and other characteristic properties. While increasing the tilting of the NiO$_6$ octahedra shifts the superconducting phase to higher pressure, simultaneous hole doping reverts this trend. We also observe up to three distinct anomalies in the nonsuperconducting state which are possibly related to density-wave formation.
title Controlling the Band Filling and the Band Width in Nickelate Superconductors
topic Superconductivity
url https://arxiv.org/abs/2604.13875