Momentum-dependent scaling exponents of nodal self-energies measured in strange metal cuprates and modelled using semi-holography
| Authors |
|
|---|---|
| Publication date | 2024 |
| Journal | Nature Communications |
| Article number | 4581 |
| Volume | Issue number | 15 | 1 |
| Number of pages | 8 |
| Organisations |
|
| Abstract |
The anomalous strange metal phase found in high-Tc cuprates does not follow the conventional condensed-matter principles enshrined in the Fermi liquid and presents a great challenge for theory. Highly precise experimental determination of the electronic self-energy can provide a test bed for theoretical models of strange metals, and angle-resolved photoemission can provide this as a function of frequency, momentum, temperature and doping. Here we show that constant energy cuts through the nodal spectral function in (Pb,Bi)2Sr2−xLaxCuO6+δ have a non-Lorentzian lineshape, consistent with a self-energy that is k dependent. This provides a new test for aspiring theories. Here we show that the experimental data are captured remarkably well by a power law with a k-dependent scaling exponent smoothly evolving with doping, a description that emerges naturally from anti-de Sitter/conformal-field-theory based semi-holography. This puts a spotlight on holographic methods for the quantitative modelling of strongly interacting quantum materials like the cuprate strange metals. |
| Document type | Article |
| Language | English |
| Published at | https://doi.org/10.1038/s41467-024-48594-6 |
| Published at | https://rdcu.be/eaLVy |
| Other links | https://www.scopus.com/pages/publications/85194873847 |
| Downloads |
s41467-024-48594-6
(Final published version)
|
| Permalink to this page | |