English

Geometric construction of superintegrable Poisson projection chains via Poisson centralizers

Mathematical Physics 2026-05-15 v1 math.MP

Abstract

We introduce a geometric framework for constructing superintegrable systems from Poisson centralizers (commutants) in the Lie-Poisson algebra S(g)S(\mathfrak{g}) of a complex semisimple Lie algebra. Starting from a chain of reductive subgroups, we study the corresponding invariant Poisson subalgebras and their Poisson centers, and formulate superintegrability in terms of a \emph{Poisson projection chain} of affine Poisson varieties. For a maximal torus TGT\subset G, we prove that the inclusions S(g)GS(g)TS(g)S(\mathfrak{g})^G\subset S(\mathfrak{g})^T\subset S(\mathfrak{g}) determine a superintegrable chain and identify the associated quotient maps gχTg//Tρg//G\mathfrak{g}\xrightarrow{\chi_T}\mathfrak{g}//T\xrightarrow{\rho}\mathfrak{g}//G. The rank (transcendence degree) computations yield the expected dimension split between commuting Hamiltonians and first integrals, and we describe the corresponding symplectic leaves in the intermediate space. Several examples illustrate how the centralizer generators organize into explicit superintegrable Poisson chains.

Keywords

Cite

@article{arxiv.2605.14490,
  title  = {Geometric construction of superintegrable Poisson projection chains via Poisson centralizers},
  author = {Kai Jiang and Guorui Ma and Ian Marquette and Junze Zhang and Yao-Zhong Zhang},
  journal= {arXiv preprint arXiv:2605.14490},
  year   = {2026}
}

Comments

arXiv admin note: substantial text overlap with arXiv:2601.01369