Chemical Pressure Induced Phase Evolution in Trilayer Square-Planar Nickelates (La<sub>1–x</sub>Y<sub>x</sub>)<sub>4</sub>Ni<sub>3</sub>O<sub>8</sub>
ORAL
Abstract
Low-valent nickelates featured by quasi-two-dimensional (quasi-2D) square planar Ni-O layers have drawn extensive attention because of their exotic electronic and magnetic properties, including superconductivity in the infinite layer (Nd,Sr)NiO2 and quintuple-layer Nd6Ni5O12. In our previous studies on trilayer quasi-2D nickelates, we have shown that La4Ni3O8 is a charge- and spin-stripe-ordered insulator below 105 K while Pr4Ni3O8 has a metallic ground state, moreover, we have identified the approximate location of a quantum phase transition at x ≈ 0.45 in (Pr1–xLax)4Ni3O8. However, it is unclear whether the evolution of phase transition is dominant by Pr-O hybridization or by simple chemical pressure effect. To understand the role of size effect in the transition, we carried out the study on (La1–xYx)4Ni3O8 solid solution, in which large La3+ (r = 103.2 pm) is partially substituted by much smaller rare earth cations, Y3+ (r = 90 pm), and no hybridization is involved. Bulk single crystals of (La1–xYx)4Ni3O8 (x = 0.1, 0.2 and 0.25) were synthesized via high oxygen pressure (pO2) floating zone growth followed by topotactic reduction. Characterizations combining crystallography, thermodynamics, electrical transport, magnetic and synchrotron X-ray single crystal diffraction were performed on (La1–xYx)4Ni3O8 materials. The results revealed that chemical pressure-stimulated size effect can lead to the evolution from insolating to metallic phase in (La1–xYx)4Ni3O8.
*This work was supported by the US Department of Energy, Office of Science, Basic Energy Sciences, Materials Science and Engineering Division. Use of the Advanced Photon Source was supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences under Contract Number No. DE-AC02-06CH11357.
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Presenters
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Xinglong Chen
- Argonne National Laboratory