Shape derivative approach to fractional overdetermined problems
Abstract
We use shape derivative approach to prove that balls are the only convex and regular domains in which the fractional overdetermined problem \begin{equation*} \left\{\begin{aligned} \Ds u&= \lambda_{s, p} u^{p-1}\quad\text{in}\quad\Om \\ u &= 0\quad \text{in}\quad\R^N\setminus \Om\\ u/d^s&=C_0\quad\text{on\;\; } \end{aligned} \right. \end{equation*} admits a nontrivial solution for and where is the best constant in the family of Subcritical Sobolev inequalities. In the cases and , we recover the classical symmetry results of Serrin, corresponding to the torsion problem and the first Dirichlet eigenvalue problem, respectively (see \cite{FS-15}). We note that for , the above problem lies outside the framework of \cite{FS-15}, and the methods developed therein do not apply. Our approach extends to the fractional setting a method initially developed by A. Henrot and T. Chatelain in \cite{CH-99}, and relies on the use of domain derivatives combined with the continuous Steiner symmetrization introduced by Brock in \cite{Brock-00}.
Cite
@article{arxiv.2506.00268,
title = {Shape derivative approach to fractional overdetermined problems},
author = {Sidy M. Djitte and Ignace A. Minlend},
journal= {arXiv preprint arXiv:2506.00268},
year = {2025}
}