[4] RAO F, LIU Q. Geopolymerization and its potential application in mine tailings consolidation: a review[J]. Mineral Processing and Extractive Metallurgy Review, 2015, 36(6): 399-409.
[5] ANDREW ROBBIE M. Global CO2 emissions from cement production, 1928—2017[J]. Earth System Science Data, 2018, 10(4): 2213-2239.
[8] ZHAO S J, FAN J J, SUN W. Utilization of iron ore tailings as fine aggregate in ultra-high performance concrete[J]. Construction and Building Materials, 2014, 50: 540-548.
[9] LV X D, SHEN W G, WANG L, et al. A comparative study on the practical utilization of iron tailings as a complete replacement of normal aggregates in dam concrete with different gradation[J]. Journal of Cleaner Production, 2019, 211: 704-715.
[10] DO CARMO E SILVA DEFVERI K, DOS SANTOS L F, DE CARVALHO J M F, et al. Iron ore tailing-based geopolymer containing glass wool residue: a study of mechanical and microstructural properties[J]. Construction and Building Materials, 2019, 220: 375-385.
[11] DUAN P, YAN C J, ZHOU W, et al. Fresh properties, compressive strength and microstructure of fly ash geopolymer paste blended with iron ore tailing under thermal cycle[J]. Construction and Building Materials, 2016, 118: 76-88.
[12] KURANCHIE F A, SHUKLA S K, HABIBI D. Utilisation of iron ore mine tailings for the production of geopolymer bricks[J]. International Journal of Mining, Reclamation and Environment, 2016, 30(2): 92-114.
[14] HAN X Y, WANG Y P, ZHANG N, et al. Facile synthesis of mesoporous silica derived from iron ore tailings for efficient adsorption of methylene blue[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2021, 617: 126391.
[15] LU C, ZHANG S L, WANG J, et al. Efficient activation of peroxymonosulfate by iron-containing mesoporous silica catalysts derived from iron tailings for degradation of organic pollutants[J]. Chemical Engineering Journal, 2022, 446: 137044.
[17] CHEN Y L, DU J Y, HOU H B, et al. Preparation and characterization of the lightweight fired brick with low-silicon iron tailings[J]. IOP Conference Series: Materials Science and Engineering, 2018, 423: 012103.
[18] LI W S, LEI G Y, XU Y, et al. The properties and formation mechanisms of eco-friendly brick building materials fabricated from low-silicon iron ore tailings[J]. Journal of Cleaner Production, 2018, 204: 685-692.
[20] LIU K N, WANG S L, QUAN X Y, et al. Effect of iron ore tailings industrial by-product as eco-friendly aggregate on mechanical properties, pore structure, and sulfate attack and dry-wet cycles resistance of concrete[J]. Case Studies in Construction Materials, 2022, 17: e01472.
[21] SHETTIMA A U, HUSSIN M W, AHMAD Y, et al. Evaluation of iron ore tailings as replacement for fine aggregate in concrete[J]. Construction and Building Materials, 2016, 120: 72-79.
[22] CHEN F, ZHANG L J, ZOU C Y, et al. Study on influencing factors of shear characteristics of rock-fill concrete layer of iron tailings as fine aggregate[J]. Construction and Building Materials, 2022, 345: 128213.
[24] ZHU Q, YUAN Y X, CHEN J H, et al. Research on the high-temperature resistance of recycled aggregate concrete with iron tailing sand[J]. Construction and Building Materials, 2022, 327: 126889.
[25] CAO L P, ZHOU J, ZHOU T, et al. Utilization of iron tailings as aggregates in paving asphalt mixture: a sustainable and eco-friendly solution for mining waste[J]. Journal of Cleaner Production, 2022, 375: 134126.
[26] LI X G, WANG P Q, QIN J Y, et al. Mechanical properties of sintered ceramsite from iron ore tailings affected by two-region structure[J]. Construction and Building Materials, 2020, 240: 117919.
[28] LI X G, WANG P Q, GUO Z Z, et al. Effect of Fe2+/Fe3+ on high-strength ceramsite prepared by sintering geopolymers using iron ore tailings[J]. Ceramics International, 2022, 48(4): 5681-5688.
[29] DAVIDOVITS J. Geopolymers and geopolymeric materials[J]. Journal of Thermal Analysis, 1989, 35(2): 429-441.
[31] ZHAO J H, TONG L Y, LI B E, et al. Eco-friendly geopolymer materials: a review of performance improvement, potential application and sustainability assessment[J]. Journal of Cleaner Production, 2021, 307: 127085.
[37] FERREIRA I C, GALRY R, HENRIQUES A B, et al. Reuse of iron ore tailings for production of metakaolin-based geopolymers[J]. Journal of Materials Research and Technology, 2022, 18: 4194-4200.
[39] OBENAUS-EMLER R, FALAH M, ILLIKAINEN M. Assessment of mine tailings as precursors for alkali-activated materials for on-site applications[J]. Construction and Building Materials, 2020, 246: 118470.
[40] WANG D H, SHI C J, FARZADNIA N, et al. A review on use of limestone powder in cement-based materials: mechanism, hydration and microstructures[J]. Construction and Building Materials, 2018, 181: 659-672.
[41] QIU J P, XIANG J C, ZHANG W Q, et al. Effect of microbial-cemented on mechanical properties of iron tailings backfill and its mechanism analysis[J]. Construction and Building Materials, 2022, 318: 126001.
[44] LU C, YANG H M, WANG J, et al. Utilization of iron tailings to prepare high-surface area mesoporous silica materials[J]. Science of the Total Environment, 2020, 736: 139483.
[46] XU C L, FENG Y L, LI H R, et al. Adsorption of heavy metal ions by iron tailings: behavior, mechanism, evaluation and new perspectives[J]. Journal of Cleaner Production, 2022, 344: 131065.
[47] DE FREITAS V A A, BREDER S M, SILVAS F P C, et al. Use of iron ore tailing from tailing dam as catalyst in a Fenton-like process for methylene blue oxidation in continuous flow mode[J]. Chemosphere, 2019, 219: 328-334.
[48] GONG L L, HUA X, YAO B X, et al. Novel red composite pigment with high thermostability from iron ore tailings: synthesis and coloring mechanism[J]. Ceramics International, 2023, 49(3): 5066-5076.
[49] YAO R, LIAO S Y, DAI C L, et al. Preparation and characterization of novel glass-ceramic tile with microwave absorption properties from iron ore tailings[J]. Journal of Magnetism and Magnetic Materials, 2015, 378: 367-375.
[50] YAO R, LIAO S Y, CHEN X Y, et al. Effects of ZnO and NiO on material properties of microwave absorptive glass-ceramic tile derived from iron ore tailings[J]. Ceramics International, 2016, 42(7): 8179-8189.
[51] LIU T T, CAO M Q, FANG Y S, et al. Green building materials lit up by electromagnetic absorption function: a review[J]. Journal of Materials Science & Technology, 2022, 112: 329-344.
[52] DUAN Y P, GUAN H T. Microwave absorbing materials[M]. Singapore: Pan Stanford Publishing, 2016: 10-14.
[53] SOLKIN M. Electromagnetic interference hazards in flight and the 5G mobile phone: review of critical issues in aviation security[J]. Transportation Research Procedia, 2021, 59: 310-318.
[54] BATOOL S, BIBI A, FREZZA F, et al. Benefits and hazards of electromagnetic waves, telecommunication, physical and biomedical: a review[J]. European Review for Medical and Pharmacological Sciences, 2019, 23(7): 3121-3128.
[55] XIE S, JI Z J, YANG Y, et al. Electromagnetic wave absorption enhancement of carbon black/gypsum based composites filled with expanded perlite[J]. Composites Part B: Engineering, 2016, 106: 10-19.
[56] ZENG X J, CHENG X Y, YU R H, et al. Electromagnetic microwave absorption theory and recent achievements in microwave absorbers[J]. Carbon, 2020, 168: 606-623.
[61] ZHAO X, HAO W J, ZHAO F, et al. Preparation and properties of magnesium oxysulfide inorganic microwave absorbing coating[J]. Journal of Physics: Conference Series, 2021, 2029(1): 012121.
[63] SHI Y F, JING H Q, LIU B B, et al. Electromagnetic (EM) wave absorption properties of cementitious building composites containing MnZn ferrite: preferable effective bandwidth and thickness via iron and graphite addition[J]. Journal of Magnetism and Magnetic Materials, 2022, 560: 169555.
[64] REN M M, LI F X, GAO P, et al. Design and preparation of double-layer structured cement-based composite with inspiring microwave absorbing property[J]. Construction and Building Materials, 2020, 263: 120670.
[65] BAI Y H, XIE B, LI H W, et al. Mechanical properties and electromagnetic absorption characteristics of foam cement-based absorbing materials[J]. Construction and Building Materials, 2022, 330: 127221.
[66] YUE L, YANG Y Y, ZHOU Q, et al. Broadband electromagnetic wave absorbing performance by designing the foam structure and double-layer for cement-based composites containing MWCNTs[J]. Cement and Concrete Composites, 2022, 131: 104595.
[67] SHEN Y N, LI Q H, XU S L. Microwave absorption properties of cementitious composites containing carbonyl iron powder (CIP) and fly ash: formation and effect of CIP core-shell structure[J]. Cement and Concrete Composites, 2022, 131: 104559.
[68] KAUR H, MARWAHA A, SINGH C, et al. Investigation of structural, hysteresis and electromagnetic parameters for microwave absorption application in doped Ba-Sr hexagonal ferrites at X-band[J]. Journal of Alloys and Compounds, 2019, 806: 1220-1229.
[69] CHEN N Y, ZHOU J T, YAO Z J, et al. Fabrication of Nd-doped Ni-Zn ferrite/multi-walled carbon nanotubes composites with effective microwave absorption properties[J]. Ceramics International, 2021, 47(8): 10545-10554.
[75] BAI B, ZHU Y P, MIAO J F, et al. Electromagnetic wave absorption performance and mechanisms of geoploymer-based composites containing core-shell SiO2@Fe3O4 nanoparticles[J]. Ceramics International, 2022, 48(2): 2755-2762.
[76] BAI B, ZHU Y P, NIU M T, et al. Modulation of electromagnetic absorption and shielding properties of geopolymer nanocomposites by designing core-shell structure of carbon nanotubes[J]. Ceramics International, 2022, 48(18): 26098-26106.
[77] LI Z, LI Y, SHI B, et al. Dual gradient direct ink writing of functional geopolymer-based carbonyl-iron/graphene composites for adjustable broadband microwave absorption[J]. Ceramics International, 2022, 48(7): 9277-9285.
[78] ZHANG Y, HE P G, YUAN J K, et al. Effects of graphite on the mechanical and microwave absorption properties of geopolymer based composites[J]. Ceramics International, 2017, 43(2): 2325-2332.
[79] HE P G, JIA L Y, MA G R, et al. Effects of fiber contents on the mechanical and microwave absorbent properties of carbon fiber felt reinforced geopolymer composites[J]. Ceramics International, 2018, 44(9): 10726-10734.