Model-level synthetic-flux control of hyperchaos order and matched-resource sensing in dissipative optomechanics
Stella Rolande Mbokop Tchounda, Carolle Tchodimou, Philippe Djorwe, Sifeu Takougang Kingni, Serge Guy Nana Engo
Abstract
Within a normalised six-dimensional model of dissipative optomechanics (one cavity + two mechanical resonators), a synthetic-flux phase Φ syn selects the order of a drive- and coupling-gated hyperchaos transition---up to four simultaneously unstable Lyapunov directions, beyond any reported single-mode benchmark---while the same matched-resource force-sensing protocol yields no flux-induced enhancement on the chaotic attractor. Building on the topology of Muthukumar et al.~[PR Applied 24, 014053 (2025)], a phase-consistent Floquet--Lyapunov protocol (cross-checked by monodromy multipliers, dissipative volume balance and a 180-run three-seed audit) localises a Neimark--Sacker bifurcation at E*=1.060 (θ=0). At a weakly coupled reference the matched Fisher gain reaches at most 1.32× (flux-off) and 1.16× (single-mode), with Monte-Carlo median 1.039× (90\,\% CI [1.025,1.053]); on the chaotic attractor the identical protocol returns a null result (GA/B=1.0390.014). Truncated-Fock and truncated-Wigner checks support the mean-field description at selected points. Both the hyperchaos classification and the sensing result remain strictly model-level: the strong-coupling sector explored here lies 2542× beyond anchored silicon optomechanical couplings. Closing that gap requires a measured inter-resonator hopping Jm and fixed bath temperatures.
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