[1] DIENEMANN W, BULLERJAHN F, HAHA M B. Belite- calciumsulfoaluminate-ternesite (BTC)-A new low carbon clinker technology[J]. Cem Int, 2013, 11(4): 100-109.
[2] BULLERJAHN F, SCHMITT D, HAHA M B. Effect of raw mix design and of clinkering process on the formation and mineralogical composition of (ternesite) belite calcium sulphoaluminate ferrite clinker[J]. Cem Concr Res, 2014, 59(5): 87-95.
[3] SHEN Y, QIAN J, HAUNG Y, et al. Synthesis of belite sulfoaluminate-ternesite cements with phosphogypsum[J]. Cem Concr Compos, 2015, 63: 67-75.
[4] BERETKA L J, VITO B D, SANTORO L, et al. Hydraulic behaviour of calcium sulfoaluminate-based cements derived from industrial process wastes[J]. Cem Concr Res, 1993, 23(5): 1205-1214.
[5] SUDOH G, OHTA T, HARADA H. High strength cement in the CaO-Al2O3-SiO2-SO3 system and its application[C]//Proceedings of the 7th International Congress on the Chemistry of Cement, Paris, France, 1980.
[6] PLIEGO-CUERVO Y B, GLASSER F P. Role of sulphates in cement clinkering: Subsolidus phase relations in the system CaO-Al2O3-SiO2-SO3[J]. Cem Concr Res, 1979, 9(1): 51-56.
[7] CARMONA-QUIROGA P M, MONTES M, PATO E, et al. Study on the activation of ternesite in CaO·Al2O3 and 12CaO·7Al2O3 blends with gypsum for the development of low-CO2 binders[J]. J Clean Prod, 2021, 291(1): 125726.
[8] HAHA M B, BULLERJAHN F, ZAJAC M. On the reactivity of ternesite[C]//Proceedings of the 14th International Congress on the Chemistry of Cement, Beijing, China, 2015.
[9] SHEN Y, WANG P, CHEN X, et al. Synthesis, characterisation and hydration of ternesite[J]. Constr Build Mater, 2021, 270(8): 121392.
[10] SKALAMPRINOS S, JEN G, GALAN I, et al. The synthesis and hydration of ternesite, Ca5(SiO4)2SO4[J]. Cem Concr Res, 2018, 113: 27-40.
[12] KHESSAIMI Y E, HAFIANE Y E, SMITH A, et al. Solid-state synthesis of pure ye’elimite[J]. J Eur Ceram Soc, 2018, 38(9): 3401-3411.
[13] BULLERJAHN F, SCHOLTEN T, SCRIVENER K L, et al. Formation, composition and stability of ye’elimite and iron-bearing solid solutions[J]. Cem Concr Res, 2020, 131: 106009.
[15] BOH?? M, KUB?TOV? D, KOTL?NOV? M K, et al. The role of Li2O, MgO and CuO on SO3 activated clinkers[J]. Cem Concr Res, 2022, 152: 106672.
[16] MOIR G K, GLASSER F P. Mineralisers, modifiers and activators in the clinkering process[C]//Proceedings of the 9th International Congress on the Chemistry of Cement, vol. 1. Delhi, India: 1992: 125-152.
[17] MSEGATA M, MARINONI N, GALIMBERTI M, et al. The effects of MgO, Na2O and SO3 on industrial clinkering process: Phase composition, polymorphism, microstructure and hydration, using a multidisciplinary approach[J]. Mater Charact, 2019, 155: 109809.
[18] ODLER I, WONNEMANN R. Effect of alkalies on portland cement hydration: Alkali oxides incorporated into the crystalline lattice of clinker minerals[J]. Cem Concr Res, 1983, 13(4): 477-482.
[19] GUESTA A, TORRE A G D L, LOSILLA E R, et al. Cheminform abstract: structure, atomistic simulations, and phase transition of stoichiometric ye?elimite[J]. Cheminform, 2013, 44(30): 1680-1687.
[20] GUESTA A, TORRE A G D L, LOSILLA E R, et al. Pseudocubic crystal structure and phase transition in doped ye?elimite[J]. Cryst Growth Des, 2014, 14(10): 5158-5163.
[21] YAN P. Hydration of Sr- and Ba-bearing sulphoaluminates in the presence of sulphates[J]. Cryst Growth Des, 1993, 5(18): 65-69.
[22] FENG X, CHENG X. The structure and quantum chemistry studies of 3CaO·3Al2O3·SrSO4[J]. Cem Concr Res, 1996, 26(6): 955-962.
[23] MORSLI K, TORRE? G, ZAHIR M, et al. Mineralogical phase analysis of alkali and sulfate bearing belite rich laboratory clinkers[J]. Cem Concr Res, 2007, 37(5): 639-646.
[25] BENARCHIDA M Y, DIOURIA A, BOUKHARIA, et al. Elaboration and thermal study of iron-phosphorus-substituted dicalcium silicate phase[J]. Cem Concr Res, 2004, 34(10): 1873-1879.
[26] FENG X, LONG S. Investigation of the effect of minor ions on the stability of β-C2S and the mechanism of stabilization[J]. Cem Concr Res, 1986, 16(4): 587-601.
[27] PRITTS I M, DAUGHERTY K E. The effect of stabilizing agents on the hydration rate of β-C2S[J]. Cem Concr Res, 1976, 6(6): 783-795.
[28] MATHRR P C. Reactive belite as route to greener and more durable cement-a review[J]. Cem Int, 2014(12): 60-69.
[30] LI J, LIAN P, HUANG S, et al. Recycling of lithium slag extracted from lithium mica by preparing white portland cement[J]. J Environ Manag, 2020, 265: 110551.
[31] HE Z H, DU S G, CHEN D. Microstructure of ultra high performance concrete containing lithium slag[J]. J Hazard Mater, 2018, 353: 35-43.
[32] HERTEL T, BULCK A V, ONISEI S, et al. Boosting the use of bauxite residue (red mud) in cement - Production of an Fe-rich calcium sulfoaluminate-ferrite clinker and characterisation of the hydration[J]. Cem Concr Res, 2021, 145: 106463.
[33] ISTERI V, OHENOJIA K, HANEIN T, et al. Production and properties of ferrite-rich CSAB cement from metallurgical industry residues[J]. Sci Total Environ, 2020, 712: 136208.
[34] PRYCE M. Calcium sulphosilicate in lime-kiln wall coating[J]. Min Mag, 1972, 38(300): 968-971.
[35] REN X, ZHANG W, YE J, et al. Influence of alkalis doping on the hydration reactivities of tricalcium silicate[J]. J Wuhan Univ Technol, Mater Sci Ed, 2019, 34(1): 107-113.
[36] WOERMANN E, HAHN T, EYSEL W. The Substitution of alkalies in tricalcium silicate[J]. Cem Concr Res, 1979, 9(6): 701-711.
[37] LIU L, ZHANG W, REN X, et al. Formation, structure, and thermal stability evolution of ternesite based on a single-stage sintering process[J]. Cem Concr Res, 2021, 147: 106519.
[38] IRRAN E, TILLMANNS E, HENTSCHEL G, et al. Ternesite, Ca5(SiO4)2SO4, a new mineral from the Ettringer Bellerberg/Eifel, Germany[J]. Mineral Petrol, 1997, 60: 121-132.
[39] MUMME W, HILL R, BUSHNELL-WYE G, et al. Rietveld crystal structure refinements, crystal chemistry and calculated powder diffraction data for the polymorphs of dicalcium silicate and related phases[J]. Neues JB Miner ABH, 1995, 169: 35-68.
[40] SEG?T? M, MARINONI N, GALIMBERTI M, et al. The effects of MgO, Na2O and SO3 on industrial clinkering process: Phase composition, polymorphism, microstructure and hydration, using a multidisciplinary approach[J]. Mater Charact, 2019, 155: 109809.
[41] STAN?K T, RYBOV? A, ZEZULOV? A, et al. Formation of clinker containing lithium[J]. Mater Sci Forum, 2019, 955: 50-55.
[42] ZHANG W, REN X, OUYANG S, et al. Development on ion substitution effect on the crystal structure and properties of tricalcium silicate[J]. J Chin Soc, 2011, 39: 1666-1672.
[43] ZHAO R, ZHANG L, FAN G, et al. Probing the exact form and doping preference of magnesium in ordinary Portland cement clinker phases: A study from experiments and DFT simulations[J]. Cem Concr Res, 2021, 144: 106420.
[44] COSTA E B, RODRIGUEZ E D, BERNA S A, et al. Production and hydration of calcium sulfoaluminate-belite cements derived from aluminium anodising sludge[J]. Constr Build Mater, 2016, 122: 373-383.
[45] BONAFOUS L, BESSADA C, MASSIOT D, et al. 29Si MAS NMR study of dicalcium silicate: The structural influence of sulfate and alumina stabilizers[J]. J Am Ceram Soc, 1995, 78(10): 2603-2608.
[47] SKIBSTED J, HJORTH J, JAKOBSEN H J. Correlation between 29Si NMR chemical shifts and mean Si-O bond lengths for calcium silicates[J]. Chem Phys Lett, 1990, 172(3/4): 279-283.
[48] MAIA A ? B, ANG?LICA R S, NEVES R F, et al. Use of 29Si and 27Al MAS NMR to study thermal activation of kaolinites from Brazilian Amazon kaolin wastes[J]. Appl Clay Sci, 2014, 87: 189-196.
[50] PERZ G, GUERRERO A, GAITERO J J, et al. Structural characterization of C-S-H gel through an improved deconvolution analysis of NMR spectra[J]. J Mater Sci, 2014, 49:142-152.
[51] ZHANG J, ZHANG W, YE J, et al. Influence of alkaline carbonates on the hydration characteristics of β-C2S[J]. Constr Build Mater, 2021, 296: 123661.
[52] WANG D, FANG Y, ZHANG Y, et al. Changes in mineral composition, growth of calcite crystal, and promotion of physico-chemical properties induced by carbonation of β-C2S[J]. J CO2 Util, 2019, 34: 149-162