2026-08-31 マックス・プランク研究所

Three steps to Mercury. Step 1: Using laboratory measurements, the researchers established a relationship between infrared radiation and SiO2 content. Step 2: They verified this relationship using measurement data from the Moon and lunar samples. Step 3: Using infrared data from Mercury, the researchers were then able to determine the SiO2 content of Mercury’s surface. © MPS / hormesdesign.de
<関連情報>
- https://www.mpg.de/26948255/mercury-s-crust-formed-by-extreme-volcanism
- https://planetary-research.org/article/view/226
月と水星の表面における SiO2の存在量 The SiO2 abundance on the surfaces of the Moon and Mercury
Christian Renggli,Morlok Andreas,Iris Weber,Maximilian P. Reitze,Tommaso Di Rocco,Jasper Berndt,Andreas Pack,Harald Hiesinger
Planetary Research Published:2026-08-27
DOI:https://doi.org/10.53480/bf74-m226
Abstract
The SiO2 abundance on rocky planetary surfaces is a key indicator for planetary crust composition and magmatic evolution. The Christiansen Feature (CF) in the mid-infrared provides a mineralogically grounded proxy for the abundance of SiO2. Here, we present a new experimental calibration based on synthetic glasses with SiO2 concentrations from 0.5 wt.% to 97.6 wt.% SiO2. The CF position shows a strong dependence on the SiO2 concentration, best described by a second-order polynomial (R2 = 0.957). To test the reliability of the new calibration we apply it to Diviner-derived CF data for the surface of the Moon to produce a global map of SiO2 on the lunar surface. The results reproduce the mare-highland bimodality and agree well with independent constraints from all lunar sample-return sites. We derive SiO2 abundances in high-silica regions, including Gruithuisen, Hansteen Alpha, and Lassell Massif with up to 76 wt.% SiO2. This is the first study that quantitatively derives the high SiO2 abundances expected in these high-silica regions with an independent compositional calibration. Finally, the new calibration allows the determination of SiO2 on the surface of Mercury. Using an existing Earth-based CF measurement, we obtain a low abundance of ~37 wt.% SiO2. High spectral and spatial resolution observations of Mercury by the Mercury Radiometer and Thermal Infrared Spectrometer (MERTIS) on the BepiColombo mission will allow a global application of this new approach, which may be extended to other planetary bodies in the future.


