[1] ZHOU Z H, DENG G S, LI L, et al. Chemical looping co-conversion of CH4 and CO2 using Fe2O3/Al2O3 pellets as both oxygen carrier and catalyst in a fluidized bed reactor[J]. Chemical Engineering Journal, 2022, 428: 132133. [2] WANG L, MA T Z, DAI S M, et al. Solar thermochemical CO2 splitting with doped perovskite LaCo0.7Zr0.3O3: thermodynamic performance and solar-to-fuel efficiency[J]. RSC Advances, 2020, 10(59): 35740-35752. [3] SHI X H, XUN Y M, DONG Y, et al. Analysis of biomimetic hierarchical porous structure regulating radiation field to improve solar thermochemical performance based on minimum Gibbs free energy[J]. International Journal of Hydrogen Energy, 2022, 47(5): 2832-2845. [4] QIN C L, YIN J J, FENG B, et al. Modelling of the calcination behaviour of a uniformly-distributed CuO/CaCO3 particle in Ca-Cu chemical looping[J]. Applied Energy, 2016, 164: 400-410. [5] BENITEZ-GUERRERO M, VALVERDE J M, SANCHEZ-JIMENEZ P E, et al. Calcium-Looping performance of mechanically modified Al2O3-CaO composites for energy storage and CO2 capture[J]. Chemical Engineering Journal, 2018, 334: 2343-2355. [6] ZHANG Z E, CAI J C, CHEN F, et al. Progress in enhancement of CO2 absorption by nanofluids: a mini review of mechanisms and current status[J]. Renewable Energy, 2018, 118: 527-535. [7] ZHANG S A, WANG X E, MAO Z Z, et al. Effect of calcination condition on the performance of iron ore in chemical-looping combustion[J]. Fuel Processing Technology, 2020, 203: 106395. [8] SUN H, LI Y J, BIAN Z G, et al. Thermochemical energy storage performances of Ca-based natural and waste materials under high pressure during CaO/CaCO3 cycles[J]. Energy Conversion and Management, 2019, 197: 111885. [9] FENG J Q, GUO H X, WANG S P, et al. Fabrication of multi-shelled hollow Mg-modified CaCO3 microspheres and their improved CO2 adsorption performance[J]. Chemical Engineering Journal, 2017, 321: 401-411. [10] QIN C L, HE D L, ZHANG Z H, et al. The consecutive calcination/sulfation in calcium looping for CO2 capture: particle modeling and behaviour investigation[J]. Chemical Engineering Journal, 2018, 334: 2238-2249. [11] HE D L, QIN C L, MANOVIC V, et al. Study on the interaction between CaO-based sorbents and coal ash in calcium looping process[J]. Fuel Processing Technology, 2017, 156: 339-347. [12] SUN H, LI Y J, YAN X Y, et al. CaO/CaCO3 thermochemical heat storage performance of CaO-based micrometre-sized tubular composite[J]. Energy Conversion and Management, 2020, 222: 113222. [13] BLAMEY J, ANTHONY E J, WANG J, et al. The calcium looping cycle for large-scale CO2 capture[J]. Progress in Energy and Combustion Science, 2010, 36(2): 260-279. [14] SARRIÓN B, PEREJÓN A, SÁNCHEZ-JIMÉNEZ P E, et al. Role of calcium looping conditions on the performance of natural and synthetic Ca-based materials for energy storage[J]. Journal of CO2 Utilization, 2018, 28: 374-384. [15] LIU H, WU S F. Preparation of high sorption durability nano-CaO-ZnO CO2 adsorbent[J]. Energy & Fuels, 2019, 33(8): 7626-7633. [16] MA X T, LI Y J, ZHANG C X, et al. Development of Mn/Mg-copromoted carbide slag for efficient CO2 capture under realistic calcium looping conditions[J]. Process Safety and Environmental Protection, 2020, 141: 380-389. [17] TIAN S C, JIANG J G, ZHANG Z T, et al. Inherent potential of steelmaking to contribute to decarbonisation targets via industrial carbon capture and storage[J]. Nature Communications, 2018, 9: 4422. [18] HE S C, HU Y C, HU T D, et al. Investigation of CaO-based sorbents derived from eggshells and red mud for CO2 capture[J]. Journal of Alloys and Compounds, 2017, 701: 828-833. [19] ZHANG Y Q, HE L, MA A H, et al. CaO-based sorbent derived from lime mud and bauxite tailings for cyclic CO2 capture[J]. Environmental Science and Pollution Research, 2018, 25(28): 28015-28024. [20] MA A H, JIA Q M, SU H Y, et al. Study of CO2 cyclic absorption stability of CaO-based sorbents derived from lime mud purified by sucrose method[J]. Environmental Science and Pollution Research, 2016, 23(3): 2530-2536. [21] LI Y J, SUN R Y, LIU C T, et al. CO2 capture by carbide slag from chlor-alkali plant in calcination/carbonation cycles[J]. International Journal of Greenhouse Gas Control, 2012, 9: 117-123. [22] CHENG J, ZHOU J H, LIU J Z, et al. Physicochemical characterizations and desulfurization properties in coal combustion of three calcium and sodium industrial wastes[J]. Energy & Fuels, 2009, 23(5): 2506-2516. [23] GU B J, ZHANG Y Q, PUDUKUDY M, et al. Study and kinetic analysis of calcined carbide slag doped with silicon nitride for cyclic CO2 capture[J]. Materials Chemistry and Physics, 2021, 259: 124016. [24] YAN X Y, LI Y J, MA X T, et al. CO2 capture by a novel CaO/MgO sorbent fabricated from industrial waste and dolomite under calcium looping conditions[J]. New Journal of Chemistry, 2019, 43(13): 5116-5125. [25] PRIETO C, COOPER P, FERNÁNDEZ A I, et al. Review of technology: thermochemical energy storage for concentrated solar power plants[J]. Renewable and Sustainable Energy Reviews, 2016, 60: 909-929. [26] SARRIÓN B, PEREJÓN A, SÁNCHEZ-JIMÉNEZ P E, et al. Calcination under low CO2 pressure enhances the calcium looping performance of limestone for thermochemical energy storage[J]. Chemical Engineering Journal, 2021, 417: 127922. [27] CHEN J A, DUAN L B, SUN Z K. Review on the development of sorbents for calcium looping[J]. Energy & Fuels, 2020, 34(7): 7806-7836. [28] LUO T, LIU S L, LUO C, et al. Effect of different organic compounds on the preparation of CaO-based CO2 sorbents derived from wet mixing combustion synthesis[J]. Chinese Journal of Chemical Engineering, 2021, 36: 157-169. [29] ZHANG C, LI Y. Characteristics of simultaneous SO2/NO removal by CaO/bio-char under fluidization at constant heating rate[J]. Clean Coal Technology, 2021, 2: 246-252. [30] SÁNCHEZ JIMÉNEZ P E, PEREJÓN A, BENÍTEZ GUERRERO M, et al. High-performance and low-cost macroporous calcium oxide based materials for thermochemical energy storage in concentrated solar power plants[J]. Applied Energy, 2019, 235: 543-552. [31] HU Y C, LIU W Q, CHEN H Q, et al. Screening of inert solid supports for CaO-based sorbents for high temperature CO2 capture[J]. Fuel, 2016, 181: 199-206. [32] OBERMEIER J, SAKELLARIOU K G, TSONGIDIS N I, et al. Material development and assessment of an energy storage concept based on the CaO-looping process[J]. Solar Energy, 2017, 150: 298-309. [33] SUN H, LI Y J, YAN X Y, et al. Thermochemical energy storage performance of Al2O3/CeO2 co-doped CaO-based material under high carbonation pressure[J]. Applied Energy, 2020, 263: 114650. [34] LI Y J, SU M Y, XIE X, et al. CO2 capture performance of synthetic sorbent prepared from carbide slag and aluminum nitrate hydrate by combustion synthesis[J]. Applied Energy, 2015, 145: 60-68. [35] BAI S B, SUN J A, ZHOU Z J, et al. Structurally improved, TiO2-incorporated, CaO-based pellets for thermochemical energy storage in concentrated solar power plants[J]. Solar Energy Materials and Solar Cells, 2021, 226: 111076. [36] BENITEZ-GUERRERO M, VALVERDE J M, PEREJON A, et al. Low-cost Ca-based composites synthesized by biotemplate method for thermochemical energy storage of concentrated solar power[J]. Applied Energy, 2018, 210: 108-116. [37] CHEN X Y, JIN X G, LIU Z M, et al. Experimental investigation on the CaO/CaCO3 thermochemical energy storage with SiO2 doping[J]. Energy, 2018, 155: 128-138. [38] KHOSA A A, YAN J, ZHAO C Y. Investigating the effects of ZnO dopant on the thermodynamic and kinetic properties of CaCO3/CaO TCES system[J]. Energy, 2021, 215: 119132. [39] WANG J S, MANOVIC V, WU Y H, et al. A study on the activity of CaO-based sorbents for capturing CO2 in clean energy processes[J]. Applied Energy, 2010, 87(4): 1453-1458. [40] MA X T, LI Y J, DUAN L B, et al. CO2 capture performance of calcium-based synthetic sorbent with hollow core-shell structure under calcium looping conditions[J]. Applied Energy, 2018, 225: 402-412. [41] CHOI D, SHIN J, PARK Y. Effects of CaCl2 on cyclic carbonation-calcination kinetics of CaO-based composite for potential application to solar thermochemical energy storage[J]. Chemical Engineering Science, 2021, 230: 116207. [42] LI L Y, KING D L, NIE Z M, et al. Magnesia-stabilized calcium oxide absorbents with improved durability for high temperature CO2 capture[J]. Industrial & Engineering Chemistry Research, 2009, 48(23): 10604-10613. [43] VALVERDE J M, SANCHEZ-JIMENEZ P E, PEREZ-MAQUEDA L A. Ca-looping for postcombustion CO2 capture: a comparative analysis on the performances of dolomite and limestone[J]. Applied Energy, 2015, 138: 202-215. [44] WANG W Y, LIU W Q, SUN J A, et al. Reactivation of CaO-based sorbents via multi-acidification under N2 or oxy-fuel (with and without SO2) calcination conditions[J]. Fuel, 2019, 244: 13-21. [45] HU Y C, LIU W Q, SUN J A, et al. Structurally improved CaO-based sorbent by organic acids for high temperature CO2 capture[J]. Fuel, 2016, 167: 17-24. [46] GENG Y Q, GUO Y X, FAN B A, et al. Research progress of calcium-based adsorbents for CO2 capture and anti-sintering modification[J]. Journal of Fuel Chemistry and Technology, 2021, 49(7): 998-1013. [47] CHEN H C, ZHAO C S, CHEN M L, et al. CO2 uptake of modified calcium-based sorbents in a pressurized carbonation-calcination looping[J]. Fuel Processing Technology, 2011, 92(5): 1144-1151. [48] LI Y J, ZHAO C S, DUAN L B, et al. Cyclic calcination/carbonation looping of dolomite modified with acetic acid for CO2 capture[J]. Fuel Processing Technology, 2008, 89(12): 1461-1469. [49] LI Y J, ZHAO C S, CHEN H C, et al. Modified CaO-based sorbent looping cycle for CO2 mitigation[J]. Fuel, 2009, 88(4): 697-704. [50] LI Y, ZHAO C, CHEN H, et al. Enhancement of Ca-based sorbent multicyclic behavior in Ca looping process for CO2 separation[J]. Chemical Engineering & Technology, 2009, 32(4): 548-555. [51] SUN C Y, YAN X Y, LI Y J, et al. Coupled CO2 capture and thermochemical heat storage of CaO derived from calcium acetate[J]. Greenhouse Gases: Science and Technology, 2020, 10(5): 1027-1038. [52] LI Z H, WANG Y, XU K, et al. Effect of steam on CaO regeneration, carbonation and hydration reactions for CO2 capture[J]. Fuel Processing Technology, 2016, 151: 101-106. [53] LAN P Q, WU S F. Synthesis of a porous nano-CaO/MgO-based CO2 adsorbent[J]. Chemical Engineering & Technology, 2014, 37(4): 580-586. [54] ALVAREZ D, ABANADES J C. Pore-size and shape effects on the recarbonation performance of calcium oxide submitted to repeated calcination/recarbonation cycles[J]. Energy & Fuels, 2005, 19(1): 270-278. |