Thermal decomposition of calcite: Mechanisms of formation and textural evolution of CaO nanocrystals

被引:343
|
作者
Rodriguez-Navarro, Carlos [1 ]
Ruiz-Agudo, Encarnacion [1 ]
Luque, Ana [1 ]
Rodriguez-Navarro, Alejandro B. [1 ]
Ortega-Huertas, Miguel [1 ]
机构
[1] Univ Granada, Dept Mineral & Petrol, Granada 18002, Spain
关键词
Calcite; lime; thermal decomposition; CaO nanocrystals; TEM-SAED; oriented aggregation; kinetics; topotactic; SURFACE-AREA; CALCINATION KINETICS; GROWTH; CACO3; SIZE; TRANSFORMATIONS; MICROSTRUCTURE; DISSOCIATION; DEHYDRATION; LIMESTONE;
D O I
10.2138/am.2009.3021
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
Field emission scanning electron microscopy (FESEM), two-dimensional X-ray diffraction (2D-XRD), and transmission electron microscopy coupled with selected area electron diffraction (TEM-SAED) analyses of the reactant/product textural relationship show that the thermal decomposition of Iceland spar single crystals according to the reaction CaCO3(s) -> CaO(s) + CO2(g) is pseudomorphic and topotactic. This reaction begins with the formation of a mesoporous structure made up of up to four sets of oriented rod-shaped CaO nanocrystals on each rhombohedral cleavage face of the calcite pseudomorph. The four sets formed on (10 (1) over bar4)(calcite) display the following topotactic relationships: (1) (1 (2) over bar 10)(calcite)//((CaO)); (2) ((1) over bar 104)(calcite perpendicular to)(110)(CaO) (3) ((1) over bar 018)(calcite)//(110)(CaO); and (4) (0 (1) over bar 14)(calcite perpendicular to)(110)(CaO); with [841 11 O]c (, in all four cases. At this stage, the reaction mechanism is independent of P-CO2 (i.e., air or high vacuum). Strain accumulation leads to the collapse of the mesoporous structure, resulting in the oriented aggregation of metastable CaO nanocrystals (similar to 5 nm in thickness) that form crystal bundles up to similar to 1 mu m in cross-section. Finally, sintering progresses up to the maximum T reached (1150 degrees C). Oriented aggregation and sintering (plus associated shrinking) reduce surface area and porosity (from 79.2 to 0.6 m(2)/g and from 53 to 47%, respectively) by loss of mesopores and growth of micrometer-sized pores. An isoconversional kinetic analysis of non-isothermal thermogravimetric data of the decomposition of calcite in air yields an overall effective activation energy E-alpha = 176 +/- 9 kJ/mol (for (alpha > 0.2), a value which approaches the equilibrium enthalpy for calcite thermal decomposition (177.8 kJ/mol). The overall good kinetic fit with the F, model (chemical reaction, first order) is in agreement with a homogeneous transformation. These analytical and kinetic results enable us to propose a novel model for the thermal decomposition of calcite that explains how decarbonation occurs at the atomic scale via a topotactic mechanism, which is independent of the experimental conditions. This new mechanistic model may help reinterpret previous results on the calcite/CaO transformation, having important geological and technological implications.
引用
收藏
页码:578 / 593
页数:16
相关论文
共 50 条
  • [41] Synthesis, characterization and catalytic effect of bimetallic nanocrystals on the thermal decomposition of ammonium perchlorate
    Srivastava, Pratibha
    Dubey, Reena
    Kapoor, I. P. S.
    Singh, G.
    INDIAN JOURNAL OF CHEMISTRY SECTION A-INORGANIC BIO-INORGANIC PHYSICAL THEORETICAL & ANALYTICAL CHEMISTRY, 2010, 49 (10): : 1339 - 1344
  • [42] Research on The Thermal Decomposition Process of K-feldspar-CaSO4-CaO System
    Chao, Jingxia
    Xia, Jupei
    Yang, Chaoqin
    Zhang, Zhaoshu
    Ren, Xuejiao
    RESOURCES AND SUSTAINABLE DEVELOPMENT, PTS 1-4, 2013, 734-737 : 916 - 920
  • [43] Kinetics of Thermal Decomposition of Ammonium Perchlorate with Nanocrystals of Binary Transition Metal Ferrites
    Singh, Gurdip
    Kapoor, Inder Pal Singh
    Dubey, Shalini
    Siril, Prem Felix
    PROPELLANTS EXPLOSIVES PYROTECHNICS, 2009, 34 (01) : 72 - 77
  • [44] 1D oriented attachment of calcite nanocrystals: formation of single-crystalline rods through collision
    Takasaki, Mihiro
    Kimura, Yuki
    Yamazaki, Tomoya
    Oaki, Yuya
    Imai, Hiroaki
    RSC ADVANCES, 2016, 6 (66): : 61346 - 61350
  • [45] Fundamental Study on Mechanisms of Thermal Decomposition and Oxidation of Aluminum Hydride
    Feng, Muye
    Li, Heping
    Mao, Qian
    Luo, Kai H.
    Hellier, Paul
    JOURNAL OF PHYSICAL CHEMISTRY C, 2019, 123 (40) : 24436 - 24445
  • [46] THERMAL DECOMPOSITION REACTION MECHANISMS AND KINETICS OF AMMONIUM PARATUNGSTATE TETRAHYDRATE
    Eser, Anil
    Kahruman, Cem
    Yusufoglu, Ibrahim
    CHARACTERIZATION OF MINERALS, METALS, AND MATERIALS 2014, 2014, : 645 - 654
  • [47] Thermal decomposition of brominated flame retardants (BFRs): Products and mechanisms
    Altarawneh, Mohammednoor
    Saeed, Anam
    Al-Harahsheh, Mohammad
    Dlugogorski, Bogdan Z.
    PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2019, 70 : 212 - 259
  • [48] Praseodymium oxide formation by thermal decomposition of a praseodymium complex
    Popa, M
    Kakihana, M
    SOLID STATE IONICS, 2001, 141 : 265 - 272
  • [49] Reaction Mechanisms in the Thermal Decomposition of CL-20 Revealed by ReaxFF Molecular Dynamics Simulations
    Ren Chunxing
    Li Xiaoxia
    Guo Li
    ACTA PHYSICO-CHIMICA SINICA, 2018, 34 (10) : 1151 - 1162
  • [50] Quantitative In Situ Visualization of Thermal Effects on the Formation of Gold Nanocrystals in Solution
    Khelfa, Abdelali
    Nelayah, Jaysen
    Amara, Hakim
    Wang, Guillaume
    Ricolleau, Christian
    Alloyeau, Damien
    ADVANCED MATERIALS, 2021, 33 (38)