Spin-stripe order tied to the pseudogap phase in La1.8-xEu0.2SrxCuO4
A. Missiaen, H. Mayaffre, S. Kr\"amer, D. Zhao, Y.B. Zhou, T. Wu, X.H. Chen, S. Pyon, T. Takayama, H. Takagi, D. LeBoeuf, M.-H. Julien

TL;DR
This study demonstrates that static spin-stripe order in Eu-doped LSCO extends up to the pseudogap boundary p*, linking stripe order closely to the pseudogap phase and highlighting its role in high-temperature superconductivity phenomena.
Contribution
It reveals that static spin stripes are present up to p* regardless of magnetic field strength, emphasizing their fundamental connection to the pseudogap phase in cuprates.
Findings
Static spin stripes extend up to p* in Eu-LSCO.
Spin-stripe order is bounded by the pseudogap boundary p*.
Spin fluctuations suggest competition between superconductivity and stripe order.
Abstract
Although spin and charge stripes in high-Tc cuprates have been extensively studied, the exact range of carrier concentration over which they form a static order remains uncertain, complicating efforts to understand their significance. In La2-xSrxCuO4 (LSCO) and in zero external magnetic field, static spin stripes are confined to a doping range well below p*, the pseudogap boundary at zero temperature. However, when high fields suppress the competing effect of superconductivity, spin stripe order is found to extend up to p*. Here, we investigated La1.8-xEu0.2SrxCuO4 (Eu-LSCO) using 139La nuclear magnetic resonance and observe field-dependent spin fluctuations suggesting a similar competition between superconductivity and spin order as in LSCO. Nevertheless, we find that static spin stripes are present practically up to p* irrespective of field strength: the stronger stripe order in…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Magnetic and transport properties of perovskites and related materials · Advanced Condensed Matter Physics
