1 |
Rogers R D , Seddon K R . Ionic liquids — solvents of the future?[J]. Science, 2003, 302: 792-793.
|
2 |
Zhang J L , Han B X , Li J S , et al . Carbon dioxide in ionic liquid microemulsions[J]. Angew. Chem. Int. Ed., 2011, 50: 9911-9915.
|
3 |
Zhang Q H , Zhang S G , Deng Y Q . Recent advances in ionic liquid catalysis[J]. Green Chem., 2011, 13: 2619-2637.
|
4 |
Maton C , De Vos N , Stevens C V . Ionic liquid thermal stabilities: decomposition mechanisms and analysis tools[J]. Chem. Soc. Rev., 2013, 42: 5963-5977.
|
5 |
Chatel G , Pereira J F B , Debbeti V , et al . Mixing ionic liquids — “simple mixtures” or “double salts”? [J]. Green Chem., 2014, 16: 2051-2083.
|
6 |
Lei Z G , Dai C N , Chen B H . Gas solubility in ionic liquids[J]. Chem. Rev., 2014, 114: 1289-1326.
|
7 |
Zhang Q H , Shreeve J M . Energetic ionic liquids as explosives and propellant fuels: a new journey of ionic liquid chemistry[J]. Chem. Rev., 2014, 114: 10527-10574.
|
8 |
Hu J Y , Ma J , Zhu Q G , et al . Transformation of atmospheric CO2 catalyzed by protic ionic liquids: efficient synthesis of 2-oxazolidinones[J]. Angew. Chem. Int. Ed., 2015, 54: 5399-5403.
|
9 |
Webb P B , Sellin M F , Kunene T E , et al . Continuous flow hydroformylation of alkenes in supercritical fluid-ionic liquid biphasic systems[J]. J. Am. Chem. Soc., 2003, 125: 15577-15588.
|
10 |
Zhao Y F , Yu B , Yang Z Z , et al . A protic ionic liquid catalyzes CO2 conversion at atmospheric pressure and room temperature: synthesis of quinazoline-2, 4-(1H, 3H)-diones[J]. Angew. Chem. Int. Ed., 2014, 53: 5922-5925.
|
11 |
Passos H , Freire M G , Coutinho J A P . Ionic liquid solutions as extractive solvents for value-added compounds from biomass[J]. Green Chem., 2014, 16: 4786-4815.
|
12 |
Visser A E , Swatloski R P , Reichert W M , et al . Task-specific ionic liquids for the extraction of metal ions from aqueous solutions[J]. Chem. Commun., 2001, 135-136.
|
13 |
Jiang X C , Nie Y , Li C X , et al . Imidazolium-based alkylphosphate ionic liquids — a potential solvent for extractive desulfurization of fuel[J]. Fuel, 2008, 87: 79-84.
|
14 |
Sun X Q , Luo H M , Dai S . Ionic liquids-based extraction: a promising strategy for the advanced nuclear fuel cycle[J]. Chem. Rev., 2012, 112: 2100-2128.
|
15 |
Wang C M , Zheng J J , Cui G K , et al . Highly efficient SO2 capture through tuning the interaction between anion-functionalized ionic liquids and SO2 [J]. Chem. Commun., 2013, 49: 1166-1168.
|
16 |
Yang D Z , Hou M Q , Ning H , et al . Reversible capture of SO2 through functionalized ionic liquids[J]. ChemSusChem, 2013, 6: 1191-1195.
|
17 |
Bates E D , Mayton R D , Ntai I , et al . CO2 capture by a task-specific ionic liquid[J]. J. Am. Chem. Soc., 2002, 124: 926-927.
|
18 |
Doroodian A , Dengler J E , Genest A , et al . Methylguanidinium borohydride: an ionic-liquid-based hydrogen-storage material[J]. Angew. Chem. Int. Ed., 2010, 49: 1871-1873.
|
19 |
Kang X C , Sun X F , Han B X . Synthesis of functional nanomaterials in ionic liquids[J]. Adv. Mater., 2016, 28: 1011-1030.
|
20 |
Kang X C , Zhang J L , Shang W T , et al . One-step synthesis of highly efficient nanocatalysts on the supports with hierarchical pores using porous ionic liquid-water gel[J]. J. Am. Chem. Soc., 2014, 136: 3768-3771.
|
21 |
Kang X C , Zhu Q G , Sun X F , et al . Highly efficient electrochemical reduction of CO2 to CH4 in an ionic liquid using a metal-organic framework cathode[J]. Chem. Sci., 2016, 7: 266-273.
|
22 |
An K , Alayoglu S , Musselwhite N , et al . Designed catalysts from Pt nanoparticles supported on macroporous oxides for selective isomerization of n-hexane[J]. J. Am. Chem. Soc., 2014, 136: 6830-6833.
|
23 |
Tsunashima K , Sugiya M . Physical and electrochemical properties of low-viscosity phosphonium ionic liquids as potential electrolytes[J]. Electrochemistry Communications, 2007, 9: 2353-2358.
|
24 |
Kuhlmann E , Himmler S , Giebelhaus H , et al . Imidazolium dialkylphosphates—a class of versatile, halogen-free and hydrolytically stable ionic liquids[J]. Green Chem., 2007, 9: 233-242.
|
25 |
Zhang J H , Fang S H , Qu L , et al . Synthesis, characterization, and properties of ether-functionalized 1, 3-dialkylimidazolium ionic liquids[J]. Ind. Eng. Chem. Res., 2014, 53: 16633-16643.
|
26 |
Ganapatibhotla L V N R , Zheng J , Roy D , et al . PEGylated imidazolium ionic liquid electrolytes: thermophysical and electrochemical properties[J]. Chem. Mater., 2010, 22: 6347-6360.
|
27 |
Dzyuba S V , Bartsch R A . Expanding the polarity range of ionic liquids[J]. Tetrahedron Lett., 2002, 43: 4657-4659.
|
28 |
Kuznetsova N I , Kuznetsova L I , Likholobov V A . Catalytic properties of Cr-containing heteropolytungstates in H2O2 participated reactions: H2O2 decomposition and oxidation of unsaturated hydrocarbons with H2O2 [J]. J. Mol. Catal. A Chem., 1996, 108: 135-143.
|
29 |
Wolf P F , Barnes R K . Borate ester-induced decomposition of alkyl hydroperoxides. The epoxidation of olefins by electrophilic oxygen[J]. J. Org. Chem., 1969, 34: 3441-3445.
|
30 |
Crivello J V , Bo Y . Studies of synthesis and cationic photopolymerization of three isomeric monoterpene diepoxides[J]. J. Polym. Sci., Part A: Polym. Chem., 1995, 33: 1881-1890.
|
31 |
巩璐 . 醚基功能化铼离子液体性质及其在环辛烯环氧化中的应用[D]. 沈阳: 辽宁大学, 2019.
|
|
Gong L . Properties of ether-functionalized rhenium ionic liquid and their applications in cyclooctene epoxidation[D]. Shenyang: Liaoning University, 2019.
|
32 |
Wilkes J S , Zaworotko M J . Air and water stable 1-ethyl-3-methylimidazolium based ionic liquids[J]. J. Chem. Soc., Chem. Commun., 1992, 13: 965-967.
|
33 |
Rost A M J , Schneider H , Zoller J P , et al . Methyltrioxorhenium heterogenized on commercially available supporting materials as cyclooctene metathesis catalyst[J]. Journal of Organometallic Chemistry, 2005, 690: 4712-4718.
|