| Literature DB >> 33654070 |
Mariam Kavai1, Joel Friedman1, Kyle Sherman1, Mingda Gong1, Ioannis Giannakis1, Samad Hajinazar1, Haoyu Hu2, Sarah E Grefe2, Justin Leshen1, Qiu Yang3, Satoru Nakatsuji3,4,5, Aleksey N Kolmogorov1, Qimiao Si2, Michael Lawler1, Pegor Aynajian6.
Abstract
Magnetic fluctuations induced by geometric frustration of local Ir-spins disturb the formation of long-range magnetic order in the family of pyrochlore iridates. As a consequence, Pr2Ir2O7 lies at a tuning-free antiferromagnetic-to-paramagnetic quantum critical point and exhibits an array of complex phenomena including the Kondo effect, biquadratic band structure, and metallic spin liquid. Using spectroscopic imaging with the scanning tunneling microscope, complemented with machine learning, density functional theory and theoretical modeling, we probe the local electronic states in Pr2Ir2O7 and find an electronic phase separation. Nanoscale regions with a well-defined Kondo resonance are interweaved with a non-magnetic metallic phase with Kondo-destruction. These spatial nanoscale patterns display a fractal geometry with power-law behavior extended over two decades, consistent with being in proximity to a critical point. Our discovery reveals a nanoscale tuning route, viz. using a spatial variation of the electronic potential as a means of adjusting the balance between Kondo entanglement and geometric frustration.Entities:
Year: 2021 PMID: 33654070 DOI: 10.1038/s41467-021-21698-z
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919