參考文獻 |
[1] Joule, J. A.; Mills, K. “Ring Synthesis of Aromatic Heterocycles” In Heterocyclic Chemistry; Joule, J. A., Mills, K., Eds.; 2010.
[2] Singh, D. K.; Kumar, R. “Clauson–Kaas Pyrrole Synthesis Using Diverse Catalysts: a Transition from Conventional to Greener Approach.” Beilstein J. Org. Chem. 2023, 19, 928–955.
[3] Hosseini-Sarvari, M.; Najafvand-Derikvandi, S.; Jarrahpour, A.; Heiran, R. “Nano Sulfated Titania as a Heterogeneous Solid Acid Catalyst for the Synthesis of Pyrroles by Clauson–Kaas Condensation under Solvent-free Conditions.” Chem. Heterocycl. Compd. 2014, 49, 1732–1739.
[4] Joule, J. A.; Mills, K. “Palladium in Heterocyclic Chemistry.” In Heterocyclic Chemistry at a Glance; Joule, J. A., Mills, K., Eds.; 2012.
[5] Ilyin, P. V.; Pankova, A. S.; Kuznetsov, M. A. “Direct and Efficient Synthesis of Pyrrole-3-carbaldehydes by Vilsmeier−Haack Formylation of Pyrroles with Sterically Crowded Amides.” Synthesis 2012, 44, 1353−1338.
[6] Wu, C.-C.; Ambre, R.; Lee, M.-H.; Shie, J.-J. “Flexible Construction Approach to the Synthesis of 1,5-Substituted Pyrrole-3-Carbaldehydes from 5-Bromo-1,2,3-Triazine.” Org. Lett. 2022, 24, 2889– 2893.
[7] Hashmi, A. S. K. “Homogeneous Gold Catalysis Beyond Assumptions and Proposals—Characterized Intermediates.” Angew. Chem. Int. Ed. 2010, 49, 52325241.
[8] Weibel, J.-M.; Blanc, A.; Pale, P. “Ag-Mediated Reactions: Coupling and Heterocyclization Reactions.” Chem. Rev. 2008, 108, 3149–3173.
[9] Majumdar, K. C.; Chattopadhyay, B.; K. Maji, P.; K. Chattopadhyay, S; Samanta, S. “Recent Development in Palladium-Mediated Synthesis of Nitrogen Heterocycles.” Heterocycles 2010, 81, 517584.
[10] Wang, Y.; Wang, P.; “Neumann, H.; Beller, M. “Cobalt-Catalyzed Multicomponen Carbonylation of Olefins: Efficient Synthesis of β-Perfluoroalkyl Imides, Amides, and Esters.” ACS Catal. 2023, 13, 6744–6753.
[11] Jena, S; Chanda, K. “Copper Catalyzed Synthesis of Heterocyclic Molecules via C–N and C–O Bond Formation under Microwaves: A Mini-Review.” ACS. OMEGA 2023, 8, 23240–23256.
[12] Trost, B. M.; Frederiksen, M. U.; Rudd, M. T. “Ruthenium-catalyzed ReactionsA Treasure Trove of Atom-economic Transformations.” Angew. Chem. Int. Ed. 2005, 44, 66306666.
[13] Bauer, E. B. “Recent Advances in Iron Catalysis in Organic Synthesis.” Curr. Org. Chem. 2008, 12, 13411369.
[14] Nishizawa, M.; Imagawa, H.; Yamamoto, H. “A New Catalyst for Organic Synthesis: Mercuric Triflate.” Org. Biomol. Chem. 2010, 8, 511521.
[15] Kataria, P.; Sahoo, S. S.; Kontham, R “Bi(III)-Catalyzed Synthesis of Substituted Furans from Hydroxy-oxetanyl Ketones: Application to Unified Total Synthesis of Shikonofurans J, D, E, and C.” J. Org. Chem. 2023, 88, 7328–7346.
[16] Aboonajmi, J.; Panahi, F.; Hosseini, M. A.; Aberi, M.; Sharghi, H. “Iodine-Catalyzed Synthesis of Benzoxazoles Using Catechols, Ammonium Acetate and Alkenes/Alkynes/Ketones via C–C and C–O Bond Cleavage.” RSC Adv. 2022, 12, 20968–20972.
[17] Worrell, B. T.; Malik, J. A.; Fokin, V. V. “Direct Evidence of a Dinuclear Copper Intermediate in Cu(I)-Catalyzed Azide-Alkyne Cycloadditions.” Science 2013, 340, 457460.
[18] Choury, M.; Basilio Lopes, A.; Blond, G.; Gulea, M. “Synthesis of Medium-Sized Heterocycles by Transition-Metal-Catalyzed Intramolecular Cyclization.” Molecules 2020, 25, 3147.
[19] Naveen, T. “Transition Metal-catalyzed Synthesis of N,O−Heterocycles via C–H Functionalization.” Tetrahedron 2021, 84, 123025.
[20] Takaya, H.; Kojima, S.; Murahashi, S.-I. “Rhodium Complex-Catalyzed Reaction of Isonitriles with Carbonyl Compounds: Catalytic Synthesis of Pyrroles.” Org. Lett. 2001, 3, 421424.
[21] Molnár, Á. “Recent Advances in the Synthesis of Five-membered Nitrogen Heterocycles Induced by Palladium Ions and Complexes.” ChemistrySelect 2023, 8, e202300153.
[22] Gulevich, A. V.; Dudnik, A. S.; Chernyak, N.; Gevorgyan, V. “Transition Metal-mediated Synthesis of Monocyclic Aromatic Heterocycles.” Chem. Rev. 2013, 113, 3084–3213.
[23] Sromek, A. W.; Rubina, M.; Gevorgyan, V. “1,2-Halogen Migration in Haloallenyl Ketones: Regiodivergent Synthesis of Halofurans.” J. Am. Chem. Soc. 2005, 127, 10500–10501.
[24] Lu, Y.; Fu, X.; Chen, H.; Du, X.; Jia, X.; Liu, Y. “An Efficient Domino Approach for the Synthesis of Multisubstituted Pyrroles via Gold/Silver-Catalyzed Amination/Cycloisomerization of (Z)-2-En-4-yn-1-ols.” Adv. Synth. Catal. 2009, 351, 129–134.
[25] Li, E; Yao, E; Xie, X; Wang, C; Shao, Y; Li, Y. “Gold-catalyzed Efficient Synthesis of 2,4-Disubstituted Furans from Aryloxyenynes.” Org. Biomol. Chem. 2012, 10, 29602965.
[26] Li, E; Yao, E; Xie, X; Wang, C; Shao, Y; Li, Y. “Copper-catalyzed Synthesis of 1,2,4-Trisubstituted Pyrroles via Cascade Reactions of Aryloxy-enynes with Amines.” RSC Adv. 2013, 3, 2287222876.
[27] Ren, Y.; Meng, L.; Peng, T.; Wang, L. “Synthesis of Multisubstituted Furans via a Catalyst- and Additive-Free Tandem Reaction of Enynones with Sulfinic Acids in Water.” Org. Lett. 2018, 20, 44304433.
[28] Yu, J; Xu, M; Wang, X; Zhang, B; Mao, H; Lv, X; Zhou, L “Catalyst-controlled Cycloisomerization/[4+3] Cycloaddition Sequence to Construct 2,3-Furan-fused Dihydroazepines and 2,3-Pyrrole-fused Dihydrooxepines.” Org. Chem. Front. 2022, 9, 18501854.
[29] Hikima, R; Takeshima, A; Kano, T “One-pot Furan Synthesis through Diethylzinc-mediated Coupling Reaction between Two α-Bromocarbonyl Compounds.” Org. Biomol. Chem. 2023, 21, 8463–8466.
[30] Quinones, R.E.; Glinkerman, C.M.; Zhu, K.; Boger, D.L. “Direct Synthesis of β-Aminoenals through Reaction of 1,2,3-Triazine with Secondary Amines.” Org. Lett. 2017, 19, 3568–3571.
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