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Title [sv]
Direkt mineralisering av atmosfärisk koldioxid genom påskyndad vittring
Title [en]
Direct Mineralization of Atmospheric CO2 by Enhanced Weathering
Abstract [sv]
Koldioxid infångas naturligt och lagras genom vittring av berg. Denna process kan påskyndas flera tusen gånger om genom att mala ner sten till fint pulver och låta den reagera med koldioxid under rätt parametrar.I det här projektet kommer vi att testa ett nytt tillvägagångssätt för direkt mineralisering av koldioxid i atmosfärisk luft, i ett inomhussystem som påskyndar koldioxidavskiljningsprocessen. Genom att utsätta nermald sten för atmosfärisk koldioxid under färhållanden har metoden potential att ta bort hundratals miljarder ton koldioxid per år samtidigt som energikostnaderna och markanvändningen kan hållas till ett minimum.Målet med detta projekt är att identifiera de optimala (i) stentyp, (ii) förhållandena (kornstorlek, fuktighet, temperature) och (iii) satsreaktor som behövs för att effektivt avlägsna atmosfärisk koldioxid genom direkt mineralisering i en nordeuropeisk miljö som Sverige. Detta kommer att uppnås i en laboratoriestudie som undersöker olika typer av stenar och och optimala fysiska parameterar (fuktighet, temperatur) för CO2 infångning. Den mineraliserade sanden kan sedan potentiellt användas för konstruktionsändamål, exempelvis i betong eller som fyllnadsmaterial. Projektets resultat kan hjälpa till att lösa klimatkrisen genom att ge ny kunskap om hur direkt mineralisering fungerar och ge förutsättningar för tekniken att skalas upp kommersiellt och ta bort koldioxid från atmosfären i stor skala.
Abstract [en]
Rock weathering could be used as an effective negative CO2 emission technology to help solve the climate crisis. This process could be sped up by orders of magnitudes in an industrial setting by exposing atmospheric CO2 to rock powder ground to micron-sized particles under optimal weathering conditions.In this project we will explore the best conditions under which this can be realized by exposing ground rocks to atmospheric CO2, especially under conditions of high humidity. This method applied to the industrial scale could have the potential of removing hundreds of gigatons of CO2 per year, while keeping energetic costs and land usage at a minimum.The objectives of this project are to identify (i) the best rock type, (ii) the ideal conditions (grain size, humidity, temperature) and (iii) the best batch reactors that could be used to capture atmospheric CO2 a northern European setting such as Sweden. This will be achieved in a laboratory study screening candidate local rock types from the mining industry, and environmental conditions (humidity, temperature) for CO2 capture. The mineralized sand could be used for construction purposes, for example in concrete or as fill dirt. The results of the project can then potentially be used to scale up the technology commercially, removing carbon from the atmosphere at a large scale, helping to solve the climate crisis.
Publications (4 of 4) Show all publications
Luong, N. T., Veyret, N. & Boily, J.-F. (2023). CO2 mineralization by MgO nanocubes in nanometric water films. ACS Applied Materials and Interfaces, 15(38), 45055-45063
Open this publication in new window or tab >>CO2 mineralization by MgO nanocubes in nanometric water films
2023 (English)In: ACS Applied Materials and Interfaces, ISSN 1944-8244, E-ISSN 1944-8252, Vol. 15, no 38, p. 45055-45063Article in journal (Other academic) Published
Abstract [en]

Water films formed by the adhesion and condensation of air moisture on minerals can trigger the formation of secondary minerals of great importance to nature and technology. Magnesium carbonate growth on Mg-bearing minerals is not only of great interest for CO2 capture under enhanced weathering scenarios but is also a prime system for advancing key ideas on mineral formation under nanoconfinement. To help advance ideas on water film-mediated CO2 capture, we tracked the growth of amorphous magnesium carbonate (AMC) on MgO nanocubes exposed to moist CO2 gas. AMC was identified by its characteristic vibrational spectral signature and by its lack of long-range structure by X-ray diffraction. We find that AMC (MgCO3·2.3-2.5H2O) grew in sub-monolayer to 4 monolayer-thick water films, with formation rates and yields scaling with humidity. AMC growth was however slowed down as AMC nanocoatings blocked water films access to the reactive MgO core. Films could however be partially dissolved by exposure to thicker water films, driving AMC reaction for several more hours until nanocoatings blocked the reactions again. These findings shed new light on a potentially important bottleneck for the efficient mineralization of CO2 using MgO-bearing products. Notably, this study shows how variations in air humidity affect CO2 capture by controlling water film coverages on reactive minerals. This process is also of great interest in the study of mineral growth in nanometrically thick water films.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2023
Keywords
air moisture, CO2, mineralization, magnesium oxide, magnesium carbonate, water films, nanomaterials
National Category
Materials Chemistry Inorganic Chemistry Physical Chemistry
Identifiers
urn:nbn:se:umu:diva-213927 (URN)10.1021/acsami.3c10590 (DOI)001067290600001 ()37707796 (PubMedID)2-s2.0-85174704540 (Scopus ID)
Funder
Swedish Research Council, 2020-04853Swedish Research Council, 2016-03808Swedish Research Council Formas, 2022-01246
Note

Originally included in thesis in manuscript form. 

Available from: 2023-08-31 Created: 2023-08-31 Last updated: 2026-07-22Bibliographically approved
Luong, N. T., Holmboe, M. & Boily, J.-F. (2023). MgO nanocube hydroxylation by nanometric water films. Nanoscale, 15(24), 10286-10294
Open this publication in new window or tab >>MgO nanocube hydroxylation by nanometric water films
2023 (English)In: Nanoscale, ISSN 2040-3364, E-ISSN 2040-3372, Vol. 15, no 24, p. 10286-10294Article in journal (Refereed) Published
Abstract [en]

Hydrophilic nanosized minerals exposed to air moisture host thin water films that are key drivers of reactions of interest in nature and technology. Water films can trigger irreversible mineralogical transformations, and control chemical fluxes across networks of aggregated nanomaterials. Using X-ray diffraction, vibrational spectroscopy, electron microscopy, and (micro)gravimetry, we tracked water film-driven transformations of periclase (MgO) nanocubes to brucite (Mg(OH)2) nanosheets. We show that three monolayer-thick water films first triggered the nucleation-limited growth of brucite, and that water film loadings continuously increased as newly-formed brucite nanosheets captured air moisture. Small (8 nm-wide) nanocubes were completely converted to brucite under this regime while growth on larger (32 nm-wide) nanocubes transitioned to a diffusion-limited regime when (∼0.9 nm-thick) brucite nanocoatings began hampering the flux of reactive species. We also show that intra- and inter-particle microporosity hosted a hydration network that sustained GPa-level crystallization pressures, compressing interlayer brucite spacing during growth. This was prevalent in aggregated 8 nm wide nanocubes, which formed a maze-like network of slit-shaped pores. By resolving the impact of nanocube size and microporosity on reaction yields and crystallization pressures, this work provides new insight into the study of mineralogical transformations induced by nanometric water films. Our findings can be applied to structurally related minerals important to nature and technology, as well as to advance ideas on crystal growth under nanoconfinement.

Place, publisher, year, edition, pages
Royal Society of Chemistry, 2023
National Category
Materials Chemistry
Identifiers
urn:nbn:se:umu:diva-209178 (URN)10.1039/d2nr07140a (DOI)000988100900001 ()37194306 (PubMedID)2-s2.0-85160450592 (Scopus ID)
Funder
Swedish Research Council, 2020-05853Swedish Research Council Formas, 2022-01246
Available from: 2023-06-20 Created: 2023-06-20 Last updated: 2023-09-04Bibliographically approved
Luong, N. T. & Boily, J.-F. (2023). Water film-driven brucite nanosheet growth and stacking. Langmuir, 39(31), 11090-11098
Open this publication in new window or tab >>Water film-driven brucite nanosheet growth and stacking
2023 (English)In: Langmuir, ISSN 0743-7463, E-ISSN 1520-5827, Vol. 39, no 31, p. 11090-11098Article in journal (Refereed) Published
Abstract [en]

Thin water films that form by the adhesion and condensation of air moisture on minerals can initiate phase transformation reactions with broad implications in nature and technology. We here show important effects of water film coverages on reaction rates and products during the transformation of periclase (MgO) nanocubes to brucite [Mg(OH)2] nanosheets. Using vibrational spectroscopy, we found that the first minutes to hours of Mg(OH)2 growth followed first-order kinetics, with rates scaling with water loadings. Growth was tightly linked to periclase surface hydration and to the formation of a brucite precursor solid, akin to poorly stacked/dislocated nanosheets. These nanosheets were the predominant forms of Mg(OH)2 growth in the 2D-like hydration environments of sub-monolayer water films, which formed below ∼50% relative humidity (RH). From molecular simulations, we infer that reactions may have been facilitated near surface defects where sub-monolayer films preferentially accumulated. In contrast, the 3D-like hydration environment of multilayered water films promoted brucite nanoparticle formation by enhancing Mg(OH)2 nanosheet growth and stacking rates and yields. From the structural similarity of periclase and brucite to other metal (hydr)oxide minerals, this concept of contrasting nanosheet growth should even be applicable for explaining water film-driven mineralogical transformations on other related nanominerals.

Place, publisher, year, edition, pages
American Chemical Society (ACS), 2023
National Category
Materials Chemistry
Identifiers
urn:nbn:se:umu:diva-212986 (URN)10.1021/acs.langmuir.3c01411 (DOI)001035007600001 ()37486722 (PubMedID)2-s2.0-85167468412 (Scopus ID)
Funder
Swedish Research Council, 2020-05853Swedish Research Council, 2022-06725Swedish Research Council Formas, 2022-01246National Supercomputer Centre (NSC), Sweden
Available from: 2023-08-21 Created: 2023-08-21 Last updated: 2023-09-04Bibliographically approved
Luong, N. T. (2023). Water film-mediated mineralogical transformations and photocatalytic reactions. (Doctoral dissertation). Umeå: Umeå University
Open this publication in new window or tab >>Water film-mediated mineralogical transformations and photocatalytic reactions
2023 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

Mineral particles capture water vapor in the atmosphere in the form of water films that are only few monolayers thick. Water films form nanoscale hydration environments that mediate a wide range of important reactions in nature and technology. This thesis explored two important phenomena that commonly occur within the confines of water films: mineralogical transformations (Topic 1) and photocatalytic decomposition of organics (Topic 2). These transformations were chiefly identified by vibrational spectroscopy, X-ray diffraction, X-ray photoelectron spectroscopy and (Transmission and Scanning) electron microscopy. Interpretations of reaction mechanisms were partially supported by chemometrics, kinetic and thermodynamic modeling, as well as molecular simulations.

Mineralogical transformations (Topic 1) resolved in this thesis involved the hydroxylation (Papers I, II) and carbonation (Paper III) of periclase (MgO), and the oxidation of rhodochrosite (MnCO3) (Paper IV). Two types of MgO nanocubes with contrasting physical properties were used to resolve nucleation- and diffusion-limited hydroxylation reactions to brucite and carbonation reactions to amorphous magnesium carbonate (AMC). While nucleation-limited reactions completely transformed (8 nm) small and aggregated MgO nanocubes to brucite, the reactions became diffusion-limited in larger (32 nm) monodispersed MgO nanocubes because of brucite surface nanocoatings (Paper I). Additionally, brucite nanosheets grew under (GPa-level) crystallization pressures because of the important volumetric expansion of the reaction, which took place in a complex network of microporosity between the small and within the larger MgO nanocubes. Brucite stacking mechanisms, explored in Paper II, focused on the early stages of MgO-water interaction in water films of different thicknesses. These were suggested to involve the stacking and (epitaxial-like) growth of precursor Mg(OH)2 nanosheets in water films. Carbonation reactions explored in Paper III completely hampered hydroxylation reactions studied in Papers I and II, and produced AMC nanocoatings grown over an unreacted MgO core. Finally, oxidation-driven reactions involving rhodochrosite in Paper IV produced MnO2, Mn3O4, and MnOOH nanocoatings with growth rates being scaled with water loadings.

Photocatalytic decomposition reactions of organics (Topic 2) were focused on the case of oxalate bound to TiO2 nanoparticles (Paper V). Photodecomposition rates scaled with humidity in oxygenated water films, and were explained by the combination of hole transfer (HT), ligand-to-metal charge transfer (LMCT), and the formation of hydroxyl radicals and reactive oxygen species. Decreasing rates in oxygen-free water films were, on the other hand, explained by water-driven charge localization, which eventually limited radical production and charge transfers via HT and LMCT. The reactions involved limited HT and LMCT processes which also competed with a charge recombination process across all humidity ranges.

This thesis provides new insight into two key types of transformations mediated by water films on minerals. This knowledge can be used to understand the reactivity of mineral (nano)particles exposed to variations in atmospheric humidity and oxygen content, which are both highly relevant to a wide range of settings in nature and technology. It can also advance new ideas in the study of mineral growth, especially within the confines of nanometer-thick water films.

Place, publisher, year, edition, pages
Umeå: Umeå University, 2023. p. 70
Keywords
mineral, water films, carbon dioxide, MgO, MnCO3, TiO2, hydroxylation, carbonation, oxidation, transformation, photocatalysis
National Category
Materials Chemistry Inorganic Chemistry Physical Chemistry Geochemistry
Research subject
Inorganic Chemistry; nanomaterials; Physical Chemistry
Identifiers
urn:nbn:se:umu:diva-213817 (URN)9789180701501 (ISBN)9789180701518 (ISBN)
Public defence
2023-09-29, Lilla hörsalen, KB.E3.01, KBC building, Linnaeus väg 10, Umeå, 09:00 (English)
Opponent
Supervisors
Funder
Swedish Research Council, 2016-03808Swedish Research Council, 2020-05853Swedish Research Council Formas, 2022-01246
Available from: 2023-09-08 Created: 2023-09-01 Last updated: 2023-09-04Bibliographically approved
Principal InvestigatorBoily, Jean-Francois
Co-InvestigatorLuong, N. Tan
Coordinating organisation
Umeå University
Funder
Period
2023-01-01 - 2025-12-31
National Category
Environmental SciencesGeotechnical Engineering
Identifiers
DiVA, id: project:3097Project, id: 2022-01246_Formas

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