Porous Silica Scaffolds Enable Mechanically Robust Simulated Hydrothermal Chimney Growth
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Le résumé fourni par la source
Injection chemical garden experiments have been used to produce laboratory analogs to seafloor hydrothermal chimneys on Earth and ocean worlds. These systems form self-assembled inorganic membranes via precipitation of metal oxyhydroxides, silicates, and/or sulfides when a hydrothermal fluid simulant is slowly injected into a seawater simulant. In certain reaction systems, this nonequilibrium precipitation generates fragile structures, which exhibit microstructural weakness from multiple competing crystallites, nonepitaxial growth, loose agglomeration, and poor sintering of particles, hindering the extraction and study of the chimneys. To improve control and robustness of simulated chimney structures, we developed a new method of precipitating chemical gardens within 3D scaffolds composed of hydrothermally relevant minerals (e.g., opal-A), in order to enable intact extraction and improved in situ and ex situ characterization of the precipitated structures. The scaffolds were fabricated by using vat stereolithography, allowing tailored control over the direction of the precipitation reaction front. We tested three open-cell architectures of scaffolds (square cubic, inverse opal, and Voronoi) that facilitated the flow-through of hydrothermal fluid simulant and structurally supported the precipitated hydrothermal chimneys. Using mineral fillers to provide surface roughness for nucleation, our scaffolds permitted stable growth of hydrothermal chimney analogs at accelerated rates up to 3 mL/min (∼40–500×) compared to previous lab-scale analogs. These 3D flow-through scaffolds successfully augmented injection chemical garden experiments, simulating hydrothermal chimneys by providing architectural strength for more physically stable chimney growth. This enhanced precipitate stability opens future avenues for studying the growth, evolution, and alteration of simulated hydrothermal precipitates.
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Le contrôle bibliographique ouvert
DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.
- Titre Crossref
- Porous Silica Scaffolds Enable Mechanically Robust Simulated Hydrothermal Chimney Growth
- Date Crossref
- 17/07/2025
- Éditeur
- American Chemical Society (ACS)
- Type
- journal-article
Ce recoupement confirme des métadonnées liées au DOI. Il ne confirme ni la méthode ni les conclusions de l’étude, et il ne compte pas comme une seconde source scientifique indépendante.
Où se fait cette recherche
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California Institute of Technology Division of Engineering and Applied Science pays non établi dans la noticeUniversité ou école supérieure
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Jet Propulsion Laboratory pays non établi dans la noticeStructure de recherche
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Kavli Energy NanoScience Institute pays non établi dans la noticeStructure de recherche
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Kavli Nanoscience Institute pays non établi dans la noticeStructure de recherche
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Planetary Science Institute pays non établi dans la noticeOrganisation à but non lucratif
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Division of Engineering and Applied Science pays non établi dans la noticeInstitution
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Division of Geological and Planetary Sciences pays non établi dans la noticeInstitution
Division of Engineering and Applied Science — California Institute of Technology, Jet Propulsion Laboratory et Kavli Energy NanoScience Institute, avec 4 autres affiliations.
Une affiliation ne permet pas de déduire la nationalité d’un auteur.