Isospin Pomeranchuk effect and the entropy of collective excitations in twisted bilayer graphene
Yu Saito, Fangyuan Yang, Jingyuan Ge, Xiaoxue Liu, Kenji Watanabe,, Takashi Taniguchi, J.I.A. Li, Erez Berg, Andrea F. Young

TL;DR
This paper reveals a Pomeranchuk-like entropy-driven mechanism in twisted bilayer graphene, where finite temperature induces isospin polarization and a resistivity peak, suggesting new insights into isospin ordering and superconductivity.
Contribution
It demonstrates a Pomeranchuk-type effect in twisted bilayer graphene, linking entropy of disordered isospins to finite-temperature phase transitions and transport phenomena.
Findings
Resistivity peak near filling factor -1 at high temperatures
Finite in-plane magnetic field suppresses entropy contribution
No thermodynamic discontinuities across the transition
Abstract
In condensed matter systems, higher temperatures typically disfavors ordered phases leading to an upper critical temperature for magnetism, superconductivity, and other phenomena. A notable exception is the Pomeranchuk effect in 3He, in which the liquid ground state freezes upon increasing the temperature due to the large entropy of the paramagnetic solid phase. Here we show that a similar mechanism describes the finite temperature dynamics of spin and valley-isospins in magic-angle twisted bilayer graphene. Most strikingly a resistivity peak appears at high temperatures near superlattice filling factor nu = -1, despite no signs of a commensurate correlated phase appearing in the low-temperature limit. Tilted field magnetotransport and thermodynamic measurements of the inplane magnetic moment show that the resistivity peak is adiabatically connected to a finite-field magnetic phase…
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