Raman Spectroscopy of Salt Deposits from the Simulated Subsurface Ocean of Enceladus

Fuente: arXiv
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Autores principales: Takeshita, Jun, Cho, Yuichiro, Tabata, Haruhisa, Takahashi, Yoshio, Shoji, Daigo, Sugita, Seiji
Formato: Preprint
Publicado: 2025
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author Takeshita, Jun
Cho, Yuichiro
Tabata, Haruhisa
Takahashi, Yoshio
Shoji, Daigo
Sugita, Seiji
author_facet Takeshita, Jun
Cho, Yuichiro
Tabata, Haruhisa
Takahashi, Yoshio
Shoji, Daigo
Sugita, Seiji
contents Saturn's ice-covered moon Enceladus may host a subsurface ocean with biologically relevant chemistry. Plumes released from this ocean preserve information on its chemical state, and previous analyses suggest weakly to strongly alkaline pH (approximately pH 8--12). Constraining the pH requires identification of pH-sensitive minerals in plume deposits. Several analytical techniques could provide such mineralogical information, but few are practical for deployment on planetary missions. Raman spectrometers, which have recently advanced for \textit{in situ} exploration and have been incorporated into flight instruments, offer a feasible approach for mineral identification on icy moons. However, their applicability to pH estimation from plume-derived minerals has not been investigated. In this study, we evaluate whether Raman measurements of plume particles deposited on the surface of Enceladus can be used to distinguish between weakly and strongly alkaline subsurface ocean models. Fluids with pH values of 9 and 11 were frozen under vacuum conditions analogous to those on Enceladus. The resulting salt deposits were then analyzed using a flight-like Raman spectrometer. The Raman spectra show pH-dependent carbonate precipitation: NaHCO$_3$ and Na$_2$CO$_3$ peaks were detected at pH 9, whereas only Na$_2$CO$_3$ peaks were detected at pH 11. These findings demonstrate that Raman spectroscopy can distinguish pH-dependent carbonate phases. This capability allows us to constrain whether the pH of the subsurface ocean is weakly alkaline or strongly alkaline, which is a key parameter for assessing its chemical evolution and potential habitability.
format Preprint
id arxiv_https___arxiv_org_abs_2512_19183
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Raman Spectroscopy of Salt Deposits from the Simulated Subsurface Ocean of Enceladus
Takeshita, Jun
Cho, Yuichiro
Tabata, Haruhisa
Takahashi, Yoshio
Shoji, Daigo
Sugita, Seiji
Earth and Planetary Astrophysics
Saturn's ice-covered moon Enceladus may host a subsurface ocean with biologically relevant chemistry. Plumes released from this ocean preserve information on its chemical state, and previous analyses suggest weakly to strongly alkaline pH (approximately pH 8--12). Constraining the pH requires identification of pH-sensitive minerals in plume deposits. Several analytical techniques could provide such mineralogical information, but few are practical for deployment on planetary missions. Raman spectrometers, which have recently advanced for \textit{in situ} exploration and have been incorporated into flight instruments, offer a feasible approach for mineral identification on icy moons. However, their applicability to pH estimation from plume-derived minerals has not been investigated. In this study, we evaluate whether Raman measurements of plume particles deposited on the surface of Enceladus can be used to distinguish between weakly and strongly alkaline subsurface ocean models. Fluids with pH values of 9 and 11 were frozen under vacuum conditions analogous to those on Enceladus. The resulting salt deposits were then analyzed using a flight-like Raman spectrometer. The Raman spectra show pH-dependent carbonate precipitation: NaHCO$_3$ and Na$_2$CO$_3$ peaks were detected at pH 9, whereas only Na$_2$CO$_3$ peaks were detected at pH 11. These findings demonstrate that Raman spectroscopy can distinguish pH-dependent carbonate phases. This capability allows us to constrain whether the pH of the subsurface ocean is weakly alkaline or strongly alkaline, which is a key parameter for assessing its chemical evolution and potential habitability.
title Raman Spectroscopy of Salt Deposits from the Simulated Subsurface Ocean of Enceladus
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2512.19183