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Abstract Crystallisation-differentiation drives arc magma evolution, yet discrepancies remain among field, geochemical and experimental evidence. Whereas other controls are better studied, the effect of fO 2 , beyond oxide stability, remains less constrained. We investigate fO 2 -pressure effects on olivine-clinopyroxene-spinel phase relations with implications for arc magmas. We conducted phase equilibria experiments at 200 MPa between 1010 and 1100 °C. We used basaltic compositions with different xMg* MgO/(MgO + FeO tot ) (0.5 to 0.7) at multiple fO 2 conditions (NNO-0.5 to NNO + 2.3), deconvolving the effects of Fe 3+ /Fe 2+ and xMg eff MgO/(MgO + FeO) on phase equilibria. Additionally, we ran 800 MPa experiments between NNO-0.4 and NNO + 2.5 to explore the combined effects of fO 2 and pressure. At 200 MPa, increasing fO 2 (1) stabilises Fe 3+ -rich spinel, leading to SiO 2 -richer melts and, therefore, less pronounced ASI (alumina saturation index, ASI = Al 2 O 3 /(CaO + Na 2 O + K 2 O) molar) increase relative to SiO 2 , and (2) expands olivine stability relative to clinopyroxene in ol-cpx cotectic melts, resulting in lower ASI melts (for a given SiO 2 content) that better match arc rocks. This is only observed under spinel-absent conditions. The 800 MPa experiments reveal decreasing spinel stability with increasing pressure, while fO 2 has a negligible effect on the ol-cpx cotectic. This suggests that the previously documented pressure effect on the olivine-clinopyroxene equilibrium is stronger than the effect of fO 2 . Our results demonstrate that fO 2 increasingly influences the olivine-clinopyroxene cotectic equilibrium as pressure decreases. This supports models where decompression-driven polybaric crystallisation under oxidising conditions shapes arc magmatic compositions. The reported pressure-fO 2 interplay helps reconcile natural and experimental arc records.
Silva et al. (Sat,) studied this question.