Filippov-Nambu $n$-algebras relevant to physics
N.G. Pletnev

TL;DR
This paper explores Filippov-Nambu n-algebras as a mathematical framework for describing symmetries in advanced theoretical physics, particularly in M2 and M5 brane systems and related superconformal theories.
Contribution
It highlights the relevance of Filippov-Nambu 3-algebras in formulating gauge symmetries of superconformal Chern-Simons theories and their connection to M-brane dynamics.
Findings
Filippov-Nambu 3-algebras underpin gauge symmetries in M2-brane theories.
They relate to the quantization of world volume diffeomorphisms.
These algebras describe the symmetry properties of classical and quantum systems.
Abstract
Gauge symmetry based on Lie algebra has a rather long history and it successfully describes electromagnetism, weak and strong interactions in the nature. Recently the Filippov-Nambu 3-algebras have been in the focus of interest since they appear as gauge symmetries of new superconformal Chern-Simons non-Abelian theories in 2 + 1 dimensions with the maximum allowed number of N = 8 linear supersymmetries. These theories explore the low energy dynamics of the microscopic degrees of freedom of coincident M2 branes and constitute the boundary conformal field theories of the bulk AdS4 / S7 exact 11-dimensional supergravity backgrounds of supermembranes. These mysterious new symmetries, the Filippov-Nambu 3-algebras represent the implementation of non-associative algebras of coordinates of charged tensionless strings, the boundaries of open M2 branes in antisymmetric field magnetic backgrounds…
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Taxonomy
TopicsBlack Holes and Theoretical Physics · Advanced Topics in Algebra · Noncommutative and Quantum Gravity Theories
