Dual clumped (Δ47-Δ48) isotope data for amorphous carbonates and transformation products reveal a novel mechanism for disequilibrium clumped isotope effects

被引:1
|
作者
Lucarelli, Jamie K. [1 ]
Purgstaller, Bettina [2 ]
Ulrich, Robert N. [1 ]
Parvez, Zeeshan [1 ]
Leis, Albrecht [2 ]
Goetschl, Katja E. [2 ]
Eagle, Robert A. [1 ,3 ]
Dietzel, Martin [2 ]
Tripati, Aradhna [1 ,3 ]
机构
[1] Univ Calif Los Angeles, Inst Environm & Sustainabil, Ctr Diverse Leadership Sci, Dept Earth Planetary & Space Sci,Dept Atmospher &, Los Angeles, CA 90095 USA
[2] Graz Univ Technol, Inst Appl Geosci, Graz, Austria
[3] Univ Bristol, Dept Earth Sci, Bristol, England
基金
奥地利科学基金会;
关键词
Clumped isotopes; Oxygen isotopes; Amorphous calcium carbonate; Biomineralization; Magnesium; CALCIUM-MAGNESIUM CARBONATE; CRYSTAL-GROWTH; MG-CALCITE; IN-SITU; C-13-O-18; BONDS; PRECURSOR PHASE; RATE CONSTANTS; WATER CORALS; OXYGEN; CRYSTALLIZATION;
D O I
10.1016/j.gca.2023.07.027
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Amorphous precursors to minerals have been observed in laboratory materials and in nature, including across diverse phyla. These metastable phases allow for the incorporation of cations at higher concentrations than classical crystallization pathways, thus, their chemistry and behavior have implications in an array of disciplines. Currently, little is known about the isotopic composition of the anion in amorphous carbonates and how isotopic values evolve during transformation into a mineral. Here, we examined the evolution of isotopic values in amorphous carbonates and mineral transformation products to identify the potential origins of disequilibrium isotopic compositions in carbonate minerals that form from an amorphous precursor. We measured dual carbonate clumped isotopes (13C18O16O -d47; 12C18O18O -d48), bulk stable isotope ratios (613C, 618O), and chemical and structural data throughout the transformation of amorphous calcium magnesium carbonate (ACMC) into high Mg-calcite (HMC) over 1 year, with crystallization occurring in solutions from 10 to 60 degrees C. The d47, d48, and 618O values evolved significantly during transformation, indicating dissolution of ACMC and reprecipitation of HMC. After crystallization, the d47 and d48 values achieved a disequilibrium steady state, while 618O values continued to evolve. For the fully crystallized HMC samples, the low temperature samples formed at 10 degrees C had the greatest extent of oxygen isotope disequilibrium (measured value - equilibrium value = -39%o); conversely; the greatest clumped isotope disequilibrium was observed in high temperature samples formed at 40 and 60 degrees C (0.068%o for d47, 0.072%o for d48). These results are consistent with a new potential mechanism of disequilibrium clumped isotope values in carbonate minerals. Specifically, the dissolution of ACMC during transformation causes disequilibrium oxygen and clumped isotope values in the dissolved inorganic carbon (DIC) pool. The extent of isotopic disequilibrium in DIC during transformation is temperature dependent, and is recorded by the forming mineral. Isotopic results may also reflect mixing effects, as scanning electron microscopy (SEM) showed ACMC and HMC existing simultaneously during transformation, indicating that ACMC likely progressively dissolves and reprecipitates as the DIC pool isotopically evolves. This may result in heterogeneous isotopic values in HMC. In total, these data suggest a highly dynamic localized environment could exist in biomineralizing organisms and abiotic systems that utilize amorphous precursors to form carbonate minerals, potentially resulting in isotopic values that are not representative of formation temperature.
引用
收藏
页码:119 / 134
页数:16
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