PAPER / ARXIV:2609.04532
W. He , X. Guo , X. Luo , J. Thomas , J. Sears , Sophia F. R. TenHuisen , Ziqiang Guan , Xinglong Chen , D. A. Dahlbom , B. Zager , J. Pelliciari , Yi-Feng Zhao , H. LaBollita , Hong Zheng , M. K. Lajer , J. F. Mitchell , V. Bisogni , A. S. Botana , M. Mitrano , S. Johnston , M. P. M. Dean
RESUMO
The discovery of superconductivity in Ruddlesden-Popper nickelates has raised a central question: how does layer architecture shape the electronic, magnetic, and lattice interactions relevant to pairing? Here, we report a detailed comparative study of the two polymorphs of La3Ni2O7--the alternating monolayer-trilayer (LNO-1313) and bilayer (LNO-2222) structures--and the related trilayer compound La4Ni3O10, using both Ni L3- and O K-edge RIXS. We find that LNO-1313 and La4Ni3O10 share strikingly similar electronic, magnetic, and lattice excitations, whereas bilayer LNO-2222 exhibits distinct features. Compared to LNO-2222, LNO-1313 and La4Ni3O10 have weaker orbital polarization, enhanced 3d8L character, a reduced out-of-plane magnetic-exchange scale, and stronger EPC. Within an effective local-moment framework, an entangled-dimer scenario provides a natural description of the spin excitations generated by strong antiferromagnetic interlayer coupling. Its advantage over conventional spin-wave theory is clearest in bilayer LNO-2222, where the interlayer coupling dominates the intralayer interactions. These findings provide critical experimental constraints for future theoretical models for the low-energy physics relevant to superconductivity in these layered nickelates.
NO MESMO MAPA