2025/11/19 by Katayama, Tomoki
Physics and Astronomy · #Black Holes and Theoretical Physics #Noncommutative and Quantum Gravity Theories #Cosmology and Gravitation Theories
paper · doi:10.48550/arxiv.2511.15423
In the single-field case, Horndeski provides the most general scalar-tensor theory with second-order field equations. By contrast, systematic multi-field extensions remain incomplete: while the general field equations for the bi-Horndeski case are known, a general action has not been established, and for cases with three or more fields, neither a general action nor general equations are available. We characterize Horndeski theory by three mild axioms: closure under invertible pure disformal transformations, the inclusion of a minimal Horndeski theory as an anchor, and the requirement that the coefficient functions of the Lagrangian be arbitrary up to relations required by the closure. Under this characterization, we recover the standard single-field action up to boundary terms and obtain a practical path to multi-field constructions. In particular, we show that antisymmetric structures, such as those identified by E. Allys, S. Akama, and T. Kobayashi, appear within this framework, and indicate that this viewpoint has the potential to account for features captured by known bi-Horndeski equations.