LBan-III: Difference between revisions
(Created page with "= Goal = The goal of this lecture is to present the final lecture on KPZ and directed polymers in finite dimension. We show that for <math>d>2</math>, a "glass transition" occurs. = KPZ: from 1D to the Cayley tree = Much is known about KPZ, but several aspects remain elusive: In <math>d=1</math>, we have <math>\theta=1/3</math> and a glassy regime present at all temperatures. The stationary solution of the KPZ equation describes, at long times, the fluctuations of qu...") |
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Revision as of 18:10, 27 August 2025
Goal
The goal of this lecture is to present the final lecture on KPZ and directed polymers in finite dimension. We show that for , a "glass transition" occurs.
KPZ: from 1D to the Cayley tree
Much is known about KPZ, but several aspects remain elusive:
In , we have and a glassy regime present at all temperatures. The stationary solution of the KPZ equation describes, at long times, the fluctuations of quantities such as . However, it does not determine the full distribution of for a given . In particular, the origin of the Tracy–Widom distribution remains unclear.
In , the Cayley tree can be solved exactly, predicting a freezing transition to a 1RSB phase ().
In finite dimensions greater than one, exact solutions are not available. Numerical simulations indicate in , while the case remains particularly intriguing.