[1] A. Breccia, B. Cavalleri, G.E. Adams, Nitroimidazoles: Chemistry, Pharmacology, and Clinical Application, Springer, Boston, MA,1982 [2] S.S. Zhao, W.J. Shi, J.L. Wang, Theoretical investigation on the structure and thermodynamic properties of the 2, 4-dinitroimidazole complex with methanol, J. Mol. Model. 19 (1) (2013) 163–171 [3] P. Pagoria, A comparison of the structure, synthesis, and properties of insensitive energetic compounds, Propellants Explos. Pyrotech. 41 (3) (2016) 452–469 [4] M. Anniyappan, S.H. Sonawane, S.J. Pawar, A.K. Sikder, Thermal decomposition and kinetics of 2, 4-dinitroimidazole: An insensitive high explosive, Thermochimica Acta 614 (2015) 93–99 [5] A.J. Bracuti, Crystal structure of 2, 4-dinitroimidazole (24DNI), J. Chem. Crystallogr. 25 (10) (1995) 625–627 [6] N. Zohari, M.H. Keshavarz, S.A. Seyedsadjadi, Some high nitrogen derivatives of nitrotetrazolyl-imidazole as new high performance energetic compounds, Central Eur. J. Energ. Mater. 11 (3) (2014) 349–362 [7] R. Damavarapu, K. Jayasuriya, T. Vladimiroff, S. Iyer, 2,4-Dinitroimidazole — a less sensitive explosive and propellant made by thermal rearrangement of molten 1,4-dinitroimidazole, US Pat., 19955387297A (1995) [8] R. Simpson, C. Coon, M. Foltz, A new insensitive explosive that has moderate performance and is low cost: 2,4-Dinitroimidazole[R]. Office of Scientific and Technical Information (OSTI), 1995 [9] W.B. Yao, X. Wang, Synthesis and purification method of 2,4-dinitroimidazole, CN Pat., 106380451A (2016) [10] J.S. Kim, S.H. Kim, J.R. Cho, E.M. Goh, Method for Preparation of 2,4-dinitroimidazole which is an intermediate for insensitive meltcastable molecular explosive, US Pat., 20110275830A (2011) [11] S. Bulusu, R. Damavarapu, J.R. Autera, R. Behrens, L.M. Minier, J. Villanueva, K. Jayasuriya, T. Axenrod, Thermal rearrangement of 1, 4-dinitroimidazole to 2, 4-dinitroimidazole: Characterization and investigation of the mechanism by mass spectrometry and isotope labeling, J. Phys. Chem. 99 (14) (1995) 5009–5015 [12] V. Sudarsanam, K. Nagarajan, T. George, S.J. Shenoy, V.V. Iyer, A.P. Kaulgud, ChemInform abstract: NITROIMIDAZOLES. PART XI. SOME HALONITRO- AND DINITROIMIDAZOLES, Chemischer Informationsdienst 14 (26) (1983). DOI:10.1002/chin.198326202 [13] K. Nagarajan, S.J. Shenoy, Nitroimidazoles: Part XX. Reactions of 2, 4-dinitroimidazole with 2-haloethanols, 3-chloropropionitrile & propylene oxide, IndianJournal of Chemistry,23B (1984)363-368 [14] K. Bhaumik, K.G. Akamanchi, 2, 4-Dinitroimidazole: Microwave assisted synthesis and use in synthesis of 2, 3-dihydro-6-nitroimidazo[2, 1-b]oxazole analogues with antimycobacterial activity, J. Heterocycl. Chem. 41 (1) (2004) 51–55 [15] P.B. Lian, Y. Yuan, J. Chen, L.Z. Chen, J.L. Wang, Study of the methylation reaction of 2, 4-dinitroimidazole and potassium 2, 4, 5-trinitroimidazol-1-ide with dimethyl sulfate, Chem. Heterocycl. Compd. 56 (8) (2020) 1010–1014 [16] J. Chen, P.B. Lian, L.Z. Chen, J.L. Wang, J. Chen, Crystal structure and thermal behavior of imidazolium 2, 4, 5-trinitroimidazolate, Cent. Eur. J. Energ. Mater. 16 (4) (2019) 547–563 [17] P.B. Lian, J. Chen, L.Z. Chen, C.Y. Zhao, J.L. Wang, F.F. Shen, Preparation of 1-methyl-2, 4, 5-trinitroimidazole from derivatives of 1-methylimidazole and its oxidation under nitration conditions, Chem. Heterocycl. Compd. 56 (1) (2020) 55–59 [18] K.H. Hou, C.M. Ma, Z.L. Liu, Synthesis, single crystal structure and performance of N-substituted derivatives of dinitroimidazole, New J. Chem. 37 (9) (2013) 2837 [19] P. Lv, Y. Tong, H.Y. Wang, L.P. Dang, C.H. Sun, S.P. Pang, Measurement and correlation of solubility of ε-CL-20 in solvent mixtures of (chloroform + ethyl acetate) and (m-xylene + ethyl acetate) at temperatures from 278.15 K to 313.15 K, J. Mol. Liq. 231 (2017) 192–201 [20] P.H. Lv, H.Y. Wang, Y. Tong, L.P. Dang, C.H. Sun, S.P. Pang, Measurement and correlation of the solubility of ε-CL-20 in 12 organic solvents at temperatures ranging from 278.15 to 318.15 K, J. Chem. Eng. Data, 62 (2017) 961-966 [21] L.Z. Chen, T.B. Zhang, M. Li, J. Li, D.L. Cao, Solubility of 2, 2', 4, 4', 6, 6'-hexanitrostilbene in binary solvent of N, N-dimethylformamide and acetonitrile, J. Chem. Thermodyn. 95 (2016) 99–104 [22] L.Z. Chen, L. Song, Y.P. Gao, A.P. Zhu, D.L. Cao, Experimental determination of solubilities and supersolubilities of 2, 2', 4, 4', 6, 6'-hexanitrostilbene in different organic solvents, Chin. J. Chem. Eng. 25 (6) (2017) 809–814 [23] G.C. Lan, J.L. Wang, L.Z. Chen, H. Hou, J. Li, Y.P. Gao, Measurement and correlation of the solubility of 3, 4-bis(3-nitrofurazan-4-yl)furoxan (DNTF) in different solvents, J. Chem. Thermodyn. 89 (2015) 264–269 [24] H. Hou, J.L. Wang, L.Z. Chen, G.C. Lan, J. Li, Experimental determination of solubility and metastable zone width of 3, 4-bis(3-nitrofurazan-4-yl)furoxan (DNTF) in (acetic acid + water) systems from (298.15 K-338.15 K), Fluid Phase Equilibria 408 (2016) 123–131 [25] L.Z. Chen, L. Song, G.C. Lan, J.L. Wang, Solubility and metastable zone width measurement of 3, 4-bis(3-nitrofurazan-4-yl)furoxan (DNTF) in ethanol + water, Chin. J. Chem. Eng. 25 (5) (2017) 646–651 [26] X.H. Zhao, J.L. Wang, L.Z. Chen, L.Y. Liu, Z.H. Han, C. Zhou, Crystallization thermodynamics of FOX-7 in three binary mixed solvents, J. Mol. Liq. 295 (2019) 111445 [27] X.H. Zhao, G.Y. Zhang, D.L. Zhang, L.Z. Chen, J.L. Wang, Solubility and thermodynamic properties of FOX-7 in four binary mixed solvents from T = 298.15 to 333.15 K, J. Mol. Liq. 322 (2021) 114876 [28] D. Li, D.L. Cao, L.Z. Chen, J.L. Wang, Z.M. Jiang, X. Ma, Solubility of Dihydroxylammonium 5, 5'-Bistetrazole-1, 1'-diolate in (formic acid, water) and their binary solvents from 298.15?K to 333.15?K at 101.1?kPa, J. Chem. Thermodyn. 128 (2019) 10–18 [29] M. Xue, D.Z. Huang, K.X. Yang, L.Z. Chen, Z.H. Zheng, Y. Xiang, Q.W. Huang, J.L. Wang, Measurement, correlation of solubility and thermodynamic properties analysis of 2, 4, 6-trinitroresorcinol hydrate in pure and binary solvents, J. Mol. Liq. 330 (2021) 115639 [30] M. Xue, J.L. Wang, L.Z. Chen, Z.H. Zheng, Y. Xiang, Q.W. Huang, Crystallization thermodynamics of 2, 4, 6-trinitrophenol and 2, 4, 6-trinitroresorcinol?2/3H2O in different pure solvents, J. Mol. Liq. 309 (2020) 113116 [31] P.B. Lian, Q. Liu, L.Z. Chen, C. Cao, J.X. Zhao, J.L. Wang, Determination and correlation solubility of 4-nitroimidazole in twelve pure solvents from 278.15?K to 323.15?K, Chin. J. Chem. Eng. 28 (10) (2020) 2634–2639 [32] D.J.W. Grant, M. Mehdizadeh, A.H.L. Chow, J.E. Fairbrother, Non-linear van't Hoff solubility-temperature plots and their pharmaceutical interpretation, Int. J. Pharm. 18 (1–2) (1984) 25–38 [33] A. Apelblat, E. Manzurola, Solubilities ofL-aspartic, DL-aspartic, DL-glutamic, p-hydroxybenzoic, o-anisic, p-anisic, and itaconic acids in water fromT=278 K toT=345 K, J. Chem. Thermodyn. 29 (12) (1997) 1527–1533 [34] H. Buchowski, A. Ksiazczak, S. Pietrzyk, Solvent activity along a saturation line and solubility of hydrogen-bonding solids, J. Chem. Phys., 84 (1980) 975–979 [35] C.H. Gu, H. Li, R.B. Gandhi, K. Raghavan, Grouping solvents by statistical analysis of solvent property parameters: Implication to polymorph screening, Int. J. Pharm. 283 (1–2) (2004) 117–125 [36] P.B. Lian, H.P. Zhao, J.L. Wang, L.Z. Chen, Y. Xiang, Q.H. Ren, Determination and correlation solubility of m-phenylenediamine in (methanol, ethanol, acetonitrile and water) and their binary solvents from 278.15?K to 313.15?K, Chin. J. Chem. Eng. 27 (5) (2019) 1149–1158 |