Heterogeneous detonation reaction spreads from sufficiently supercritical hot spots as burn waves, the growth and coalescence of which controls the bulk reaction rate. The statistical hot spot model formally homoge-nizes these effects, giving a rate term that depends on the number density of supercritical hot spots, ?, and the burn wave speed, V . In order to completely specify statistical-hot-spot-based reaction rate laws for use in reactive flow models, one must obtain realistic expressions for ? and V . The focus of this paper is upon the burn-wave structure and its speed, V . Specifically, a physically-based, temperature-dependent reactive-ther mal wave prescription is developed which, when suitably nondimensionalized, depends on a single pa-rameter, ?. Numerical simulations show that ? characterizes the reaction morphology. Specifically, ? con-trols important elements of the degree-of-heterogeneity in mixed-mode reaction?transitional behavior that may lie anywhere between homogeneous and heterogeneous limiting cases. The model also yields an ana-lytic, physical-properties-based formula for V . This expression enables the development of a new class of Arrhenius-based, formally-homogenized, mixed-mode-reaction-aware reaction rate law. Published by Elsevier Inc. on behalf of The Combustion Institute.