|
[1]
|
Elnagdi, M.H., Elmoghayar, M.R.H. and Elgemeie, G.E.H. (1984) The Chemistry of 3-Oxoalkanenitriles. Synthesis, 1984, 1-26. [Google Scholar] [CrossRef]
|
|
[2]
|
Khidre, R.E., Abdelwahab, B.F. and Badria, F.A.-R. (2011) New Quinoline-Based Compounds for Analgesic and Anti-Inflammatory Evaluation. Letters in Drug Design & Discovery, 8, 640-648. [Google Scholar] [CrossRef]
|
|
[3]
|
Khidre, R.E. and Abdelwahab, B.F. (2013) Synthesis of 5-Membered Heterocycles Using Benzoylacetonitriles as Synthon. Turkish Journal of Chemistry, 37, 685-712. [Google Scholar] [CrossRef]
|
|
[4]
|
Hauser, C.R. and Eby, C.J. (1957) Cyclization of β-Ketonitriles or β-Ketoamides with Ketones by Polyphosphoric Acid to Form Substituted 2-Pyridones. Journal of the American Chemical Society, 79, 728-731. [Google Scholar] [CrossRef]
|
|
[5]
|
Florey, P., Smallridge, A.J., Ten, A. and Trewhella, M.A. (1999) Chemo-and Stereoselective Reduction of an α-Cyanoketone by Bakers’ Yeast at Low Temperature. Organic Letters, 1, 1879-1880. [Google Scholar] [CrossRef] [PubMed]
|
|
[6]
|
Watanabe, M., Murata, K. and Ikariya, T. (2002) Practical Synthesis of Optically Active Amino Alcohols via Asymmetric Transfer Hydrogenation of Functionalized Aromatic Ketones. The Journal of Organic Chemistry, 67, 1712-1715. [Google Scholar] [CrossRef] [PubMed]
|
|
[7]
|
Zhu, D., Ankati, H., Mukherjee, C., Yang, Y., Biehl, E.R. and Hua, L. (2007) Asymmetric Reduction of β-Ketonitriles with a Recombinant Carbonyl Reductase and Enzymatic Transformation to Optically Pure Β-Hydroxy Carboxylic Acids. Organic Letters, 9, 2561-2563. [Google Scholar] [CrossRef] [PubMed]
|
|
[8]
|
Ankati, H., Zhu, D., Yang, Y., Biehl, E.R. and Hua, L. (2009) Asymmetric Synthesis of Both Antipodes of β-Hydroxy Nitriles and β-Hydroxy Carboxylic Acids via Enzymatic Reduction or Sequential Reduction/Hydrolysis. The Journal of Organic Chemistry, 74, 1658-1662. [Google Scholar] [CrossRef] [PubMed]
|
|
[9]
|
Soltani, O., Ariger, M.A., Vázquez-Villa, H. and Carreira, E.M. (2010) Transfer Hydrogenation in Water: Enantioselective, Catalytic Reduction of α-Cyano and α-Nitro Substituted Acetophenones. Organic Letters, 12, 2893-2895. [Google Scholar] [CrossRef] [PubMed]
|
|
[10]
|
Robinson, J.M., Ahmed, M., Alaniz, N.J., Boyles, T.R., Brasher, C.D., Floyd, K.A., et al. (1998) Pyridine Syntheses. II. Condensation Routes toward Streptonigrin Ring C. Journal of Heterocyclic Chemistry, 35, 65-69. [Google Scholar] [CrossRef]
|
|
[11]
|
Ryabukhin, S.V., Plaskon, A.S., Ostapchuk, E.N., Volochnyuk, D.M., Shishkin, O.V., Shivanyuk, A.N., et al. (2007) A One-Step Fusion of 1,3-Thiazine and Pyrimidine Cycles. Organic Letters, 9, 4215-4218. [Google Scholar] [CrossRef] [PubMed]
|
|
[12]
|
Reddy, P.S.N. and Reddy, P. (2004) Synthesis of Pyrazolo[5’,1’:2,3]Pyrimido[4,5-b][1,4]-Benzoxazines, a NEW Heterocyclic Ring System from 5(3)-Aminopyrazoles. Heterocyclic Communications, 10, 163-166. [Google Scholar] [CrossRef]
|
|
[13]
|
Rostampoor, A. and Alizadeh, A. (2025) Recent Advances in the Application of β-Ketonitriles as Multifunctional Intermediates in Organic Chemistry. RSC Advances, 15, 14558-14586. [Google Scholar] [CrossRef] [PubMed]
|
|
[14]
|
Shi, T., Yin, G., Wang, X., Xiong, Y., Peng, Y., Li, S., et al. (2023) Recent Advances in the Syntheses of Pyrroles. Green Synthesis and Catalysis, 4, 20-34. [Google Scholar] [CrossRef]
|
|
[15]
|
Bhardwaj, V., Gumber, D., Abbot, V., Dhiman, S. and Sharma, P. (2015) Pyrrole: A Resourceful Small Molecule in Key Medicinal Hetero-Aromatics. RSC Advances, 5, 15233-15266. [Google Scholar] [CrossRef]
|
|
[16]
|
Jeelan, B.N., Basavarajaiah, S.M. and Shyamsunder, K. (2022) Therapeutic Potential of Pyrrole and Pyrrolidine Analogs: An Update. Molecular Diversity, 26, 2915-2937. [Google Scholar] [CrossRef] [PubMed]
|
|
[17]
|
Singh, N., Singh, S., Kohli, S., Singh, A., Asiki, H., Rathee, G., et al. (2021) Recent Progress in the Total Synthesis of Pyrrole-Containing Natural Products (2011-2020). Organic Chemistry Frontiers, 8, 5550-5573. [Google Scholar] [CrossRef]
|
|
[18]
|
Seipp, K., Geske, L. and Opatz, T. (2021) Marine Pyrrole Alkaloids. Marine Drugs, 19, Article 514. [Google Scholar] [CrossRef] [PubMed]
|
|
[19]
|
Kiyokawa, K., Minakata, S. and Nagata, T. (2018) Recent Advances in the Synthesis of β-Ketonitriles. Synthesis, 50, 485-498. [Google Scholar] [CrossRef]
|
|
[20]
|
Dorsch, J.B. and McElvain, S.M. (1932) The Preparation of Benzoylacetic Ester and Some of Its Homologs. Journal of the American Chemical Society, 54, 2960-2964. [Google Scholar] [CrossRef]
|
|
[21]
|
Blake, J., Willson, C.D. and Rapoport, H. (1964) 3-Pyrrolidinones by Intramolecular Condensation. Journal of the American Chemical Society, 86, 5293-5299. [Google Scholar] [CrossRef]
|
|
[22]
|
Eby, C.J. and Hauser, C.R. (1957) Acylations of Nitriles with Esters by Sodium Amide in Liquid Ammonia to Form β-Ketonitriles. Consideration of Amidine Formation1. Journal of the American Chemical Society, 79, 723-725. [Google Scholar] [CrossRef]
|
|
[23]
|
Barhdadi, R., Gal, J., Heintz, M. and Troupel, M. (1992) Aryl Halides as Convenient Precursors of Electrogenerated Bases. Efficient Syntheses of β-Oxo Nitriles or Esters by Coupling Active-Hydrogen Groups with Esters. Journal of the Chemical Society, Chemical Communications, 28, 50-51. [Google Scholar] [CrossRef]
|
|
[24]
|
Hébri, H., Duñach, E. and Périchon, J. (1992) Samarium-Catalyzed Electrochemical Cyanomethylation of Esters. Synlett, 1992, 293-294. [Google Scholar] [CrossRef]
|
|
[25]
|
Kayaleh, N.E., Gupta, R.C. and Johnson, F. (2000) Enolate Ions as β-Activators of Ortho-Metalation: Direct Synthesis of 3-Aminoindenones. The Journal of Organic Chemistry, 65, 4515-4522. [Google Scholar] [CrossRef] [PubMed]
|
|
[26]
|
Ji, Y., Trenkle, W.C. and Vowles, J.V. (2006) A High-Yielding Preparation of β-Ketonitriles. Organic Letters, 8, 1161-1163. [Google Scholar] [CrossRef] [PubMed]
|
|
[27]
|
Pienaar, D.P., Butsi, K.R., Rousseau, A.L. and Brady, D. (2019) A Green, Economical Synthesis of β-Ketonitriles and Trifunctionalized Building Blocks from Esters and Lactones. Beilstein Journal of Organic Chemistry, 15, 2930-2935. [Google Scholar] [CrossRef] [PubMed]
|
|
[28]
|
Kahne, D. and Collum, D.B. (1981) Kinetic Cyanations of Ketone Enolates. Tetrahedron Letters, 22, 5011-5014. [Google Scholar] [CrossRef]
|
|
[29]
|
Kiyokawa, K., Nagata, T. and Minakata, S. (2016) Electrophilic Cyanation of Boron Enolates: Efficient Access to Various β‐Ketonitrile Derivatives. Angewandte Chemie International Edition, 55, 10458-10462. [Google Scholar] [CrossRef] [PubMed]
|
|
[30]
|
Nagata, T., Matsubara, H., Kiyokawa, K. and Minakata, S. (2017) Catalytic Activation of 1-Cyano-3,3-Dimethyl-3-(1H)-1,2-Benziodoxole with B(C6F5)3 Enabling the Electrophilic Cyanation of Silyl Enol Ethers. Organic Letters, 19, 4672-4675. [Google Scholar] [CrossRef] [PubMed]
|
|
[31]
|
Nagata, T., Tamaki, A., Kiyokawa, K., Tsutsumi, R., Yamanaka, M. and Minakata, S. (2018) Enantioselective Electrophilic Cyanation of Boron Enolates: Scope and Mechanistic Studies. Chemistry—A European Journal, 24, 17027-17032. [Google Scholar] [CrossRef] [PubMed]
|
|
[32]
|
Wang, Y.-F., Qiu, J.S., Kong, D.J., Gao, Y.T., Lu, F.P., Karmaker, P.G. and Chen, F.X. (2015) The Direct Electrophilic Cyanation of β-Keto Esters and Amides with Cyano Benziodoxole. Organic & Biomolecular Chemistry, 13, 365-368. [Google Scholar] [CrossRef] [PubMed]
|
|
[33]
|
Park, A. and Lee, S. (2012) Synthesis of Benzoylacetonitriles from Pd-Catalyzed Carbonylation of Aryl Iodides and Trimethylsilylacetonitrile. Organic Letters, 14, 1118-1121. [Google Scholar] [CrossRef] [PubMed]
|
|
[34]
|
Schranck, J., Burhardt, M., Bornschein, C., Neumann, H., Skrydstrup, T. and Beller, M. (2014) Palladium‐Catalyzed Carbonylative α‐Arylation to β‐Ketonitriles. Chemistry—A European Journal, 20, 9534-9538. [Google Scholar] [CrossRef] [PubMed]
|
|
[35]
|
Ruan, L., Chen, C., Zhang, X. and Sun, J. (2018) Recent Advances on the Photo-Induced Reactions of Acyl Radical. Chinese Journal of Organic Chemistry, 38, 3155-3164. [Google Scholar] [CrossRef]
|
|
[36]
|
Chatgilialoglu, C., Crich, D., Komatsu, M. and Ryu, I. (1999) Chemistry of Acyl Radicals. Chemical Reviews, 99, 1991-2070. [Google Scholar] [CrossRef] [PubMed]
|
|
[37]
|
Banerjee, A., Lei, Z. and Ngai, M.Y. (2018) Acyl Radical Chemistry via Visible-Light Photoredox Catalysis. Synthesis, 51, 303-333. [Google Scholar] [CrossRef] [PubMed]
|
|
[38]
|
Raviola, C., Protti, S., Ravelli, D. and Fagnoni, M. (2019) Photogenerated Acyl/Alkoxycarbonyl/Carbamoyl Radicals for Sustainable Synthesis. Green Chemistry, 21, 748-764. [Google Scholar] [CrossRef]
|
|
[39]
|
Cho, S.H., Kim, J.Y., Kwak, J. and Chang, S. (2011) Recent Advances in the Transition Metal-Catalyzed Twofold Oxidative C-H Bond Activation Strategy for C-C and C-N Bond Formation. Chemical Society Reviews, 40, 5068-5083. [Google Scholar] [CrossRef] [PubMed]
|
|
[40]
|
Liu, W., Li, Y., Liu, K. and Li, Z. (2011) Iron-Catalyzed Carbonylation-Peroxidation of Alkenes with Aldehydes and Hydroperoxides. Journal of the American Chemical Society, 133, 10756-10759. [Google Scholar] [CrossRef] [PubMed]
|
|
[41]
|
Benati, L., Calestani, G., Leardini, R., Minozzi, M., Nanni, D., Spagnolo, P., et al. (2003) Generation and Intramolecular Reactivity of Acyl Radicals from Alkynylthiol Esters under Reducing Tin-Free Conditions. Organic Letters, 5, 1313-1316. [Google Scholar] [CrossRef] [PubMed]
|
|
[42]
|
Bath, S., Laso, N.M., Lopez-Ruiz, H., Quiclet-Sire, B. and Zard, S.Z. (2003) A Practical Access to Acyl Radicals from Acyl Hydrazides. Chemical Communications, 39, 204-205. [Google Scholar] [CrossRef] [PubMed]
|
|
[43]
|
Boger, D.L. and Mathvink, R.J. (1989) Phenyl Selenoesters as Effective Precursors of Acyl Radicals for Use in Intermolecular Alkene Addition Reactions. The Journal of Organic Chemistry, 54, 1777-1779. [Google Scholar] [CrossRef]
|
|
[44]
|
Chen, C., Crich, D. and Papadatos, A. (1992) The Chemistry of Acyl Tellurides: Generation and Trapping of Acyl Radicals, Including Aryltellurium Group Transfer. Journal of the American Chemical Society, 114, 8313-8314. [Google Scholar] [CrossRef]
|
|
[45]
|
Crich, D., Chen, C., Hwang, J., Yuan, H., Papadatos, A. and Walter, R.I. (1994) Photoinduced Free Radical Chemistry of the Acyl Tellurides: Generation, Inter-and Intramolecular Trapping, and ESR Spectroscopic Identification of Acyl Radicals. Journal of the American Chemical Society, 116, 8937-8951. [Google Scholar] [CrossRef]
|
|
[46]
|
Bugaut, X. and Glorius, F. (2012) Organocatalytic Umpolung: N-Heterocyclic Carbenes and Beyond. Chemical Society Reviews, 41, 3511-3522. [Google Scholar] [CrossRef] [PubMed]
|
|
[47]
|
Enders, D., Niemeier, O. and Henseler, A. (2007) Organocatalysis by N-Heterocyclic Carbenes. Chemical Reviews, 107, 5606-5655. [Google Scholar] [CrossRef] [PubMed]
|
|
[48]
|
Duncton, M.A.J. (2011) Minisci Reactions: Versatile CH-Functionalizations for Medicinal Chemists. MedChemComm, 2, 1135-1161. [Google Scholar] [CrossRef]
|
|
[49]
|
Boger, D.L. and Mathvink, R.J. (1992) Acyl Radicals: Intermolecular and Intramolecular Alkene Addition Reactions. The Journal of Organic Chemistry, 57, 1429-1443. [Google Scholar] [CrossRef]
|
|
[50]
|
Capaldo, L. and Ravelli, D. (2017) Hydrogen Atom Transfer (HAT): A Versatile Strategy for Substrate Activation in Photocatalyzed Organic Synthesis. European Journal of Organic Chemistry, 2017, 2056-2071. [Google Scholar] [CrossRef] [PubMed]
|
|
[51]
|
Shi, Z. and Glorius, F. (2013) Synthesis of Fluorenones Viaquaternary Ammonium Salt-Promoted Intramolecular Dehydrogenative Arylation of Aldehydes. Chemical Science, 4, 829-833. [Google Scholar] [CrossRef]
|
|
[52]
|
Jhuang, H., Reddy, D.M., Chen, T. and Lee, C. (2016) DTBP/TBHP‐Promoted Hydroacylation of Unactivated Alkenes. Asian Journal of Organic Chemistry, 5, 1452-1456. [Google Scholar] [CrossRef]
|
|
[53]
|
Tsujimoto, S., Iwahama, T., Sakaguchi, S. and Ishii, Y. (2001) The Radical-Chain Addition of Aldehydes to Alkenes by the Use of N-Hydroxyphthalimide (NHPI) as a Polarity-Reversal Catalyst. Chemical Communications, 37, 2352-2353. [Google Scholar] [CrossRef] [PubMed]
|
|
[54]
|
Shen, J., Yang, D., Liu, Y., Qin, S., Zhang, J., Sun, J., et al. (2014) Copper-Catalyzed Aerobic Oxidative Coupling of Aromatic Alcohols and Acetonitrile to β-Ketonitriles. Organic Letters, 16, 350-353. [Google Scholar] [CrossRef] [PubMed]
|
|
[55]
|
Li, J. and Wang, D.Z. (2015) Visible-Light-Promoted Photoredox Syntheses of α,β-Epoxy Ketones from Styrenes and Benzaldehydes under Alkaline Conditions. Organic Letters, 17, 5260-5263. [Google Scholar] [CrossRef] [PubMed]
|
|
[56]
|
Jung, S., Kim, J. and Hong, S. (2017) Visible Light‐Promoted Synthesis of Spiroepoxy Chromanone Derivatives via a Tandem Oxidation/Radical Cyclization/Epoxidation Process. Advanced Synthesis & Catalysis, 359, 3945-3949. [Google Scholar] [CrossRef]
|
|
[57]
|
Iqbal, N. and Cho, E.J. (2016) Visible-Light-Mediated Synthesis of Amides from Aldehydes and Amines via in Situ Acid Chloride Formation. The Journal of Organic Chemistry, 81, 1905-1911. [Google Scholar] [CrossRef] [PubMed]
|
|
[58]
|
Mukherjee, S., Garza‐Sanchez, R.A., Tlahuext‐Aca, A. and Glorius, F. (2017) Alkynylation of C(O)-H Bonds Enabled by Photoredox‐Mediated Hydrogen‐Atom Transfer. Angewandte Chemie International Edition, 56, 14723-14726. [Google Scholar] [CrossRef] [PubMed]
|
|
[59]
|
Zhang, X. and MacMillan, D.W.C. (2017) Direct Aldehyde C-H Arylation and Alkylation via the Combination of Nickel, Hydrogen Atom Transfer, and Photoredox Catalysis. Journal of the American Chemical Society, 139, 11353-11356. [Google Scholar] [CrossRef] [PubMed]
|
|
[60]
|
Vu, M.D., Das, M. and Liu, X. (2017) Direct Aldehyde Csp2-H Functionalization through Visible‐Light‐Mediated Photoredox Catalysis. Chemistry—A European Journal, 23, 15899-15902. [Google Scholar] [CrossRef] [PubMed]
|
|
[61]
|
Esposti, S., Dondi, D., Fagnoni, M. and Albini, A. (2007) Acylation of Electrophilic Olefins through Decatungstate‐Photocatalyzed Activation of Aldehydes. Angewandte Chemie International Edition, 46, 2531-2534. [Google Scholar] [CrossRef] [PubMed]
|
|
[62]
|
Fan, P., Zhang, C., Lan, Y., Lin, Z., Zhang, L. and Wang, C. (2019) Photocatalytic Hydroacylation of Trifluoromethyl Alkenes. Chemical Communications, 55, 12691-12694. [Google Scholar] [CrossRef] [PubMed]
|
|
[63]
|
Ohmatsu, K., Suzuki, R., Furukawa, Y., Sato, M. and Ooi, T. (2020) Zwitterionic 1,2,3-Triazolium Amidate as a Catalyst for Photoinduced Hydrogen-Atom Transfer Radical Alkylation. ACS Catalysis, 10, 2627-2632. [Google Scholar] [CrossRef]
|
|
[64]
|
Matsumoto, A., Yamamoto, M. and Maruoka, K. (2022) Cationic DABCO-Based Catalyst for Site-Selective C-H Alkylation via Photoinduced Hydrogen-Atom Transfer. ACS Catalysis, 12, 2045-2051. [Google Scholar] [CrossRef]
|
|
[65]
|
Wang, Z., Huang, S., Hou, H., Liu, W. and Ou, W. (2025) Direct Hydroacylation of Arylacrylonitriles toward β-Ketonitriles Assisted by an EDA Complex. Chemical Communications, 61, 7510-7513. [Google Scholar] [CrossRef] [PubMed]
|
|
[66]
|
Liu, J., Liu, Q., Yi, H., Qin, C., Bai, R., Qi, X., et al. (2014) Visible‐Light‐Mediated Decarboxylation/Oxidative Amidation of α‐Keto Acids with Amines under Mild Reaction Conditions Using O2. Angewandte Chemie International Edition, 53, 502-506. [Google Scholar] [CrossRef] [PubMed]
|
|
[67]
|
Chu, L., Lipshultz, J.M. and MacMillan, D.W.C. (2015) Merging Photoredox and Nickel Catalysis: The Direct Synthesis of Ketones by the Decarboxylative Arylation of α‐Oxo Acids. Angewandte Chemie International Edition, 54, 7929-7933. [Google Scholar] [CrossRef] [PubMed]
|
|
[68]
|
Cheng, W., Shang, R., Yu, H. and Fu, Y. (2015) Room‐Temperature Decarboxylative Couplings of α‐Oxocarboxylates with Aryl Halides by Merging Photoredox with Palladium Catalysis. Chemistry—A European Journal, 21, 13191-13195. [Google Scholar] [CrossRef] [PubMed]
|
|
[69]
|
Zhou, C., Li, P., Zhu, X. and Wang, L. (2015) Merging Photoredox with Palladium Catalysis: Decarboxylative Ortho-Acylation of Acetanilides with α-Oxocarboxylic Acids under Mild Reaction Conditions. Organic Letters, 17, 6198-6201. [Google Scholar] [CrossRef] [PubMed]
|
|
[70]
|
Zhou, Q., Guo, W., Ding, W., Wu, X., Chen, X., Lu, L., et al. (2015) Decarboxylative Alkynylation and Carbonylative Alkynylation of Carboxylic Acids Enabled by Visible‐Light Photoredox Catalysis. Angewandte Chemie International Edition, 54, 11196-11199. [Google Scholar] [CrossRef] [PubMed]
|
|
[71]
|
Bergonzini, G., Cassani, C. and Wallentin, C.-J. (2015) Acyl Radicals from Aromatic Carboxylic Acids by Means of Visible-Light Photoredox Catalysis. Angewandte Chemie International Edition, 54, 14066-14069.
|
|
[72]
|
Pettersson, F., Bergonzini, G., Cassani, C. and Wallentin, C. (2017) Redox‐Neutral Dual Functionalization of Electron‐deficient Alkenes. Chemistry—A European Journal, 23, 7444-7447. [Google Scholar] [CrossRef] [PubMed]
|
|
[73]
|
Zhang, M., Ruzi, R., Xi, J., Li, N., Wu, Z., Li, W., et al. (2017) Photoredox-Catalyzed Hydroacylation of Olefins Employing Carboxylic Acids and Hydrosilanes. Organic Letters, 19, 3430-3433. [Google Scholar] [CrossRef] [PubMed]
|
|
[74]
|
Zhang, M., Li, N., Tao, X., Ruzi, R., Yu, S. and Zhu, C. (2017) Selective Reduction of Carboxylic Acids to Aldehydes with Hydrosilane via Photoredox Catalysis. Chemical Communications, 53, 10228-10231. [Google Scholar] [CrossRef] [PubMed]
|
|
[75]
|
Bergonzini, G., Cassani, C., Lorimer‐Olsson, H., Hörberg, J. and Wallentin, C. (2016) Visible‐Light‐Mediated Photocatalytic Difunctionalization of Olefins by Radical Acylarylation and Tandem Acylation/Semipinacol Rearrangement. Chemistry—A European Journal, 22, 3292-3295. [Google Scholar] [CrossRef] [PubMed]
|
|
[76]
|
Dong, S., Wu, G., Yuan, X., Zou, C. and Ye, J. (2017) Visible-Light Photoredox Catalyzed Hydroacylation of Electron-Deficient Alkenes: Carboxylic Anhydride as an Acyl Radical Source. Organic Chemistry Frontiers, 4, 2230-2234. [Google Scholar] [CrossRef]
|
|
[77]
|
Ociepa, M., Baka, O., Narodowiec, J. and Gryko, D. (2017) Light‐Driven Vitamin B12‐Catalysed Generation of Acyl Radicals from 2‐S‐Pyridyl Thioesters. Advanced Synthesis & Catalysis, 359, 3560-3565. [Google Scholar] [CrossRef]
|
|
[78]
|
Norman, A.R., Yousif, M.N. and McErlean, C.S.P. (2018) Photoredox-Catalyzed Indirect Acyl Radical Generation from Thioesters. Organic Chemistry Frontiers, 5, 3267-3298. [Google Scholar] [CrossRef]
|
|
[79]
|
Ravelli, D., Protti, S. and Fagnoni, M. (2016) Decatungstate Anion for Photocatalyzed “Window Ledge” Reactions. Accounts of Chemical Research, 49, 2232-2242. [Google Scholar] [CrossRef] [PubMed]
|
|
[80]
|
Li, C.-G., Xu, G.-Q. and Xu, P.-F. (2017) Synthesis of Fused Pyran Derivatives via Visible-Light-Induced Cascade Cyclization of 1,7-Enynes with Acyl Chlorides. Organic Letters, 19, 512-515. [Google Scholar] [CrossRef] [PubMed]
|
|
[81]
|
Liu, Y., Wang, Q., Zhou, C., Xiong, B., Zhang, P., Yang, C., et al. (2018) Visible-Light-Mediated Ipso-Carboacylation of Alkynes: Synthesis of 3-Acylspiro[4,5]Trienones from N-(p-Methoxyaryl)Propiolamides and Acyl Chlorides. The Journal of Organic Chemistry, 83, 2210-2218. [Google Scholar] [CrossRef] [PubMed]
|
|
[82]
|
Liu, Y., Wang, Q., Zhou, C., Xiong, B., Zhang, P., Kang, S., et al. (2018) Visible-Light-Mediated Cascade Difunctionalization/Cyclization of Alkynoates with Acyl Chlorides for Synthesis of 3-Acylcoumarins. Tetrahedron Letters, 59, 2038-2041. [Google Scholar] [CrossRef]
|
|
[83]
|
Li, L., Guo, S., Wang, Q. and Zhu, J. (2019) Acyl Radicals from Benzothiazolines: Synthons for Alkylation, Alkenylation, and Alkynylation Reactions. Organic Letters, 21, 5462-5466. [Google Scholar] [CrossRef] [PubMed]
|
|
[84]
|
Uchikura, T., Moriyama, K., Toda, M., Mouri, T., Ibáñez, I. and Akiyama, T. (2019) Benzothiazolines as Radical Transfer Reagents: Hydroalkylation and Hydroacylation of Alkenes by Radical Generation under Photoirradiation Conditions. Chemical Communications, 55, 11171-11174. [Google Scholar] [CrossRef] [PubMed]
|
|
[85]
|
Uchikura, T., Toda, M., Mouri, T., Fujii, T., Moriyama, K., Ibáñez, I., et al. (2020) Radical Hydroalkylation and Hydroacylation of Alkenes by the Use of Benzothiazoline under Thermal Conditions. The Journal of Organic Chemistry, 85, 12715-12723. [Google Scholar] [CrossRef] [PubMed]
|
|
[86]
|
Pálvölgyi, Á.M., Ehrschwendtner, F., Schnürch, M. and Bica-Schröder, K. (2022) Photocatalyst-Free Hydroacylations of Electron-Poor Alkenes and Enones under Visible-Light Irradiation. Organic & Biomolecular Chemistry, 20, 7245-7249. [Google Scholar] [CrossRef] [PubMed]
|
|
[87]
|
Yang, M.L., Dong, C.L., Guan, Z. and He, Y. (2024) Visible Light-Induced Hydroacylation of Benzylidenemalononitriles with Aroyl Chlorides Using Silane as a Hydrogen Donor. The Journal of Organic Chemistry, 89, 1285-1295. [Google Scholar] [CrossRef] [PubMed]
|
|
[88]
|
Liu, Y.L., Ouyang, Y.J., Zheng, H.X., Liu, H. and Wei, W. (2021) Recent Advances in Acyl Radical Enabled Reactions between Aldehydes and Alkenes. Chemical Communications, 57, 6111-6120. [Google Scholar] [CrossRef] [PubMed]
|