Silica substituted carbonate apatite: synthesis and analytical challenges
| dc.contributor.author | Anenburg, Michael | en |
| dc.contributor.author | Chen, Jeff | en |
| dc.contributor.author | Gardiner, Michael G. | en |
| dc.contributor.author | de Hoog, Jan C.M. | en |
| dc.contributor.author | Humphreys, Madeleine C.S. | en |
| dc.contributor.author | Missen, Owen P. | en |
| dc.contributor.author | Mills, Stuart J. | en |
| dc.contributor.author | Pašić, Božana | en |
| dc.date.accessioned | 2025-12-17T19:41:20Z | |
| dc.date.available | 2025-12-17T19:41:20Z | |
| dc.date.issued | 2025 | en |
| dc.description.abstract | We use a high temperature experiment to demonstrate a coupled substitution mechanism for carbonate and silica in apatite, namely 2PO3-4 -> SiO4-4 + CO2-3, with carbonate substituting for phosphate (type-B substitution). The carbonate anion group occupies a crystallographically distinct site as one of two side faces of a now vacant T site phosphate tetrahedron, and an oxygen site vacancy is formed. In our experiment, apatite is synthesised using a high-pressure carbonate flux method, resulting in large crystals amenable to a range of analytical techniques which are otherwise not feasible on the more commonly synthesised nanoscale material. The apatite is analysed with wavelength dispersive spectrometry (WDS) using an electron probe microanalyser (EPMA), secondary ion mass spectrometry (SIMS), Fourier-transform infrared spectroscopy (FTIR) using both transmission and attenuated total reflectance (ATR) techniques, and single crystal X-ray diffraction (SCXRD). There is no agreement on total carbonate contents between the analytical methods with EPMA-WDS and FTIR-ATR indicating similar to 5 wt% CO2, SIMS suggesting roughly 2.6 wt% CO2, and SCXRD unable to conclusively support one or the other. Both estimates are sufficient to account for phosphate substitution by type-B carbonate and orthosilicate (SiO4-4), but the higher 5 wt% estimate raises the possibility of additional carbonate hosted in the X channel site as type-A carbonate. The bioactivity of this type of substitution relative to other vectors (such as Na-Si) is currently unknown and requires further research. As our apatite was synthesised under geologically reasonable conditions, it also raises the possibility that this substitution is present in CO2-rich environments in the deep Earth, such as carbonic hydrothermal fluids and carbonatite magma systems, from the mantle to the crust. | en |
| dc.description.sponsorship | This project was supported by Australian Research Council (ARC) grants FL130100066, LP190100635, LP190100785, and IE240100103. The authors acknowledge Microscopy Australia (ROR: 042mm0k03) at the Centre for Advanced Microscopy, The Australian National University, a facility enabled by NCRIS and university support. MCSH acknowledges the support of the NERC ion microprobe facility (pilot grant IMFS114). MCSH was supported by the European Research Council (ERC) under the European Union's Horizon 2020 research and innovation programme (grant agreement No 864923). OPM acknowledges support from the project "Building capacity in Regional Australia to enhance Australia's Economy through research, training, and environmentally sustainable production of critical metals", supported by the Australian Government Department of Education. We thank ASA for drawing the watercolour table of contents entry. | en |
| dc.description.status | Peer-reviewed | en |
| dc.format.extent | 14 | en |
| dc.identifier.issn | 2050-750X | en |
| dc.identifier.other | PubMed:40694056 | en |
| dc.identifier.other | WOS:001532405600001 | en |
| dc.identifier.scopus | 105013131838 | en |
| dc.identifier.uri | https://hdl.handle.net/1885/733796315 | |
| dc.language.iso | en | en |
| dc.rights | © 2025 The Author(s) | en |
| dc.source | Journal of Materials Chemistry B | en |
| dc.subject | A-type carbonate | en |
| dc.subject | B carbonate | en |
| dc.subject | Bond-valence parameters | en |
| dc.subject | Electron-probe microanalysis | en |
| dc.subject | Hydroxyapatite | en |
| dc.subject | In-vitro | en |
| dc.subject | Strontium | en |
| dc.subject | Thermodynamic model | en |
| dc.subject | Trace-element | en |
| dc.subject | X-ray | en |
| dc.title | Silica substituted carbonate apatite: synthesis and analytical challenges | en |
| dc.type | Journal article | en |
| dspace.entity.type | Publication | en |
| local.bibliographicCitation.lastpage | 9981 | en |
| local.bibliographicCitation.startpage | 9968 | en |
| local.contributor.affiliation | Anenburg, Michael; Geochemistry, Research School of Earth Sciences, ANU College of Science and Medicine, The Australian National University | en |
| local.contributor.affiliation | Chen, Jeff; Centre for Advanced Microscopy, ANU College of Science and Medicine, The Australian National University | en |
| local.contributor.affiliation | Gardiner, Michael G.; Research School of Chemistry, ANU College of Science and Medicine, The Australian National University | en |
| local.contributor.affiliation | de Hoog, Jan C.M.; University of Edinburgh | en |
| local.contributor.affiliation | Humphreys, Madeleine C.S.; Durham University | en |
| local.contributor.affiliation | Missen, Owen P.; University of Tasmania | en |
| local.contributor.affiliation | Mills, Stuart J.; Gallery of Natural Art | en |
| local.contributor.affiliation | Pašić, Božana; Research School of Earth Sciences, ANU College of Science and Medicine, The Australian National University | en |
| local.identifier.citationvolume | 32 | en |
| local.identifier.doi | 10.1039/d5tb01061f | en |
| local.identifier.pure | ea042ec0-59d9-455f-a69a-601aa62a4470 | en |
| local.identifier.url | https://www.scopus.com/pages/publications/105013131838 | en |
| local.type.status | Published | en |
Downloads
Original bundle
1 - 1 of 1