Chinese Journal of Catalysis ›› 2026, Vol. 86: 149-159.DOI: 10.1016/S1872-2067(26)65039-5
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Shaokang Yua,1, Meng Donga,1, Ming Xua,b,*(
), Yijia Lva, Zhiyang Penga, Weitao Zhanga, Dabing Guoa, Yixie Wanga, Zhen Xuea, Yusen Yanga,c,*(
), Hao Lia, Mingfei Shaoa,c,*(
)
Received:2025-09-24
Accepted:2026-01-04
Online:2026-07-18
Published:2026-06-12
Contact:
*E-mail: mingxu@nefu.edu.cn (M. Xu), yangyusen@buct.edu.cn (Y. Yang), shaomf@mail.buct.edu.cn (M. Shao).
About author:1Contributed equally to this work.
Supported by:Shaokang Yu, Meng Dong, Ming Xu, Yijia Lv, Zhiyang Peng, Weitao Zhang, Dabing Guo, Yixie Wang, Zhen Xue, Yusen Yang, Hao Li, Mingfei Shao. Boosting co-thermal coupled in-situ reduction of morphology- engineered carbonate via preparing distinct crystalline phases[J]. Chinese Journal of Catalysis, 2026, 86: 149-159.
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URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)65039-5
Fig. 1. The hydrogenation performance of CaCO3 with different morphologies. The selectivity and formation rate of CO and CO2 during reductive calcination of rhombohedral calcite (a,b), spherical vaterite (c,d) and rod-shaped aragonite (e,f) under a pure hydrogen atmosphere. Reaction conditions: CaCO3 (300 mg), 1 bar, H2: 100 mL min-1, space velocity: 20000 mL gCaCO3-1 h-1.
Fig. 2. Structural characterizations of rhombohedral calcite, spherical vaterite, and rod-shaped aragonite after hydrogenation. SEM images of rhombohedral calcite (a), spherical vaterite (b), and rod-shaped aragonite (c). (d) XRD patterns of CaCO3 in different crystalline phases. XRD patterns of rhombohedral calcite (e), spherical vaterite (f), and rod-shaped aragonite (g) after hydrogenation at different temperatures. (h) Nitrogen adsorption-desorption isotherms of CaCO3 with different morphologies after hydrogenation at 700 °C, the inset shows the pore size distribution derived from the desorption branch of the isotherm using the BJH method. Reaction conditions: 300 mg sample, 100 mL min-1, H2, 700 °C.
Fig. 3. Morphology characterization of rhombohedral calcite, spherical vaterite and rod-shaped aragonite after hydrogenation. HRTEM, HAADF-STEM and corresponding EDS mapping of CaO obtained through hydrogenation of rhombohedral calcite (a-c), spherical vaterite (d-f), and rod-shaped aragonite (g-i) at 700 °C. Reaction conditions: 300 mg sample, 100 mL min-1, H2, 700 °C.
Fig. 4. SEM images of rhombohedral calcite (a-c), spherical vaterite (d-f), and rod-shaped aragonite (g-i) after hydrogenation at different temperatures. Reaction conditions: 300 mg sample, 100 mL min-1, H2, 500, 600, and 700 °C.
Fig. 5. DTA, TG, and DTG curves of rhombohedral calcite (a), spherical vaterite (b), and rod-shaped aragonite (c) during temperature evolution under an argon atmosphere. MS signals from TPR experiments of rhombohedral calcite (d), spherical vaterite (e), and rod-shaped aragonite (f) under H2 flow.
Fig. 6. CO2 conversion (a), CO selectivity (b), and reaction rate (c) of CaO for the RWGS reaction, derived from the hydrogenation of CaCO3 with different morphologies at 700 ℃. In-situ DRIFTS spectra of rhombohedral calcite (d), spherical vaterite (e), and rod-shaped aragonite (f) during hydrogenation.
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