Dominik Spahr, Lkhamsuren Bayarjargal, Valentin Kovalev, Ninel Sharapova, Lukas Brüning, Pascal L. Jurzick, Sean S. Sebastian, Maxim Bykov, Victor Milman, Konstantin Glazyrin, Elena Bykova, Björn Winkler
The transport of carbon into the deep Earth is governed by the stability and properties of carbon-bearing phases. However, despite extensive research efforts, it is still an open question whether there are high-pressure minerals that can incorporate both silicon and carbon simultaneously. Multiple theoretical studies suggest that Si─C─O compounds could be stabilized at high pressures, but so far, no reliable experimental evidence for their presence has been presented. Here, we demonstrate that at 40(2) gigapascals and ≈ 1800(200) kelvin, CO 2 reacts with silicic acid or cristobalite and forms the anhydrous silicon carbonate Si[CO 3 ] 2 . The structure consists of [SiO 6 ] octahedra coordinated by six [CO 3 ] 2− groups. Similar groups occur in many ambient and high-pressure carbonates, suggesting that mixed carbonate-silicate phases may be stable at midmantle pressures. Silicon carbonate decomposes upon decompression at pressures of <6 gigapascals but could act as a potential host for carbon in Earth’s lower mantle.