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Host-guest complexation. 48. Octol building blocks for cavitands and carcerands

Cite this: J. Org. Chem. 1989, 54, 6, 1305–1312
Publication Date (Print):March 1, 1989
https://doi.org/10.1021/jo00267a015
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  2. Clotilde Capacchione, Davide Picariello, Paolo Della Sala, Carmen Talotta, Placido Neri, Immacolata Bruno, Antonio Pauciulo, Andrea Roberta Bartiromo, Rocco Gliubizzi, Carmine Gaeta. Dispersing and Retarding Properties of Water-Soluble Tetrasulfonate Resorcin[4]arene and Pyrogallol[4]arene Macrocycles in Cement-Based Mortar. ACS Omega 2020, 5 (29) , 18218-18225. https://doi.org/10.1021/acsomega.0c01837
  3. Suren J. Nemat, Hanna Jędrzejewska, Alessandro Prescimone, Agnieszka Szumna, Konrad Tiefenbacher. Catechol[4]arene: The Missing Chiral Member of the Calix[4]arene Family. Organic Letters 2020, 22 (14) , 5506-5510. https://doi.org/10.1021/acs.orglett.0c01864
  4. Daisuke Shimoyama, Ryo Sekiya, Hiroto Kudo, Takeharu Haino. Feet-to-Feet Connected Trisresorcinarenes. Organic Letters 2020, 22 (2) , 352-356. https://doi.org/10.1021/acs.orglett.9b03693
  5. Daisuke Shimoyama, Takeharu Haino. Conformational Characteristics of Feet-to-Feet-Connected Biscavitands. The Journal of Organic Chemistry 2019, 84 (21) , 13483-13489. https://doi.org/10.1021/acs.joc.9b01730
  6. Arkaprabha Giri, MD. Waseem Hussain, Bahadur Sk, Abhijit Patra. Connecting the Dots: Knitting C-Phenylresorcin[4]arenes with Aromatic Linkers for Task-Specific Porous Organic Polymers. Chemistry of Materials 2019, 31 (20) , 8440-8450. https://doi.org/10.1021/acs.chemmater.9b02563
  7. Diana C. Riveros, Glenn Hefter, Edgar F. Vargas. Enthalpies of Solution of C-Alkylresorcin[4]arenes in Water and Acetonitrile: Hydrophilic and Hydrophobic Effects. The Journal of Physical Chemistry B 2019, 123 (17) , 3763-3768. https://doi.org/10.1021/acs.jpcb.8b11330
  8. Nicolás Moreno-Gómez, Edgar F. Vargas, Richard Buchner. Hydration and Counterion Binding of an Aminomethylated Resorcin[4]arene. The Journal of Physical Chemistry B 2019, 123 (8) , 1840-1846. https://doi.org/10.1021/acs.jpcb.8b11900
  9. Kongzhao Su, Wenjing Wang, Beibei Li, Daqiang Yuan. Azo-Bridged Calix[4]resorcinarene-Based Porous Organic Frameworks with Highly Efficient Enrichment of Volatile Iodine. ACS Sustainable Chemistry & Engineering 2018, 6 (12) , 17402-17409. https://doi.org/10.1021/acssuschemeng.8b05203
  10. Qiu-Yi Zhai, Juan Su, Ting-Ting Guo, Jin Yang, Jian-Fang Ma, Jie-Sheng Chen. Two Porous Polyoxometalate-Resorcin[4]arene-Based Supramolecular Complexes: Selective Adsorption of Organic Dyes and Electrochemical Properties. Crystal Growth & Design 2018, 18 (10) , 6046-6053. https://doi.org/10.1021/acs.cgd.8b00891
  11. Qi Zhang, Lorenzo Catti, Konrad Tiefenbacher. Catalysis inside the Hexameric Resorcinarene Capsule. Accounts of Chemical Research 2018, 51 (9) , 2107-2114. https://doi.org/10.1021/acs.accounts.8b00320
  12. Cornelius Gropp, Brendan L. Quigley, and François Diederich . Molecular Recognition with Resorcin[4]arene Cavitands: Switching, Halogen-Bonded Capsules, and Enantioselective Complexation. Journal of the American Chemical Society 2018, 140 (8) , 2705-2717. https://doi.org/10.1021/jacs.7b12894
  13. Daisuke Shimoyama, Toshiaki Ikeda, Ryo Sekiya, and Takeharu Haino . Synthesis and Structure of Feet-to-Feet Connected Bisresorcinarenes. The Journal of Organic Chemistry 2017, 82 (24) , 13220-13230. https://doi.org/10.1021/acs.joc.7b02301
  14. San-Jiang Pan, Gang Ye, Fei Jia, Zhenfeng He, Hua Ke, Huan Yao, Zhi Fan, and Wei Jiang . Regioselective Synthesis of Methylene-Bridged Naphthalene Oligomers and Their Host–Guest Chemistry. The Journal of Organic Chemistry 2017, 82 (18) , 9570-9575. https://doi.org/10.1021/acs.joc.7b01579
  15. Shan Jiang, Rahul S. Patil, Charles L. Barnes, and Jerry L. Atwood . Application of Cocrystallization for the Separation of C-Ethylresorcin[6]arene from C-Ethylresoricn[4]arene. Crystal Growth & Design 2017, 17 (8) , 4060-4063. https://doi.org/10.1021/acs.cgd.7b00691
  16. Shan Jiang, Rahul S. Patil, Charles L. Barnes, and Jerry L. Atwood . Separation and In Situ Cocrystallization of C-Ethylresorcin[6]arenes with 1-(2-Pyridylazo)-2-naphthol. Crystal Growth & Design 2017, 17 (6) , 2919-2922. https://doi.org/10.1021/acs.cgd.7b00172
  17. Ngong Kodiah Beyeh, Hyun Hwa Jo, Igor Kolesnichenko, Fangfang Pan, Elina Kalenius, Eric V. Anslyn, Robin H. A. Ras, and Kari Rissanen . Recognition of Viologen Derivatives in Water by N-Alkyl Ammonium Resorcinarene Chlorides. The Journal of Organic Chemistry 2017, 82 (10) , 5198-5203. https://doi.org/10.1021/acs.joc.7b00449
  18. Christopher M. Kane, Onome Ugono, Leonard J. Barbour, and K. Travis Holman . Many Simple Molecular Cavitands Are Intrinsically Porous (Zero-Dimensional Pore) Materials. Chemistry of Materials 2015, 27 (21) , 7337-7354. https://doi.org/10.1021/acs.chemmater.5b02972
  19. Jose A. P. Coelho, Greta P. Naydenova, Stoyan M. Miloshev, Christo P. Novakov, Pavlina P. Petrova, Dragomir S. Yankov, and Roumiana P. Stateva . Solubilities of C-Tetraalkylcalix[4]resorcinarenes in SCCO2: Experimental Measurements, Characterization, and Correlation. Journal of Chemical & Engineering Data 2015, 60 (3) , 909-918. https://doi.org/10.1021/je500990f
  20. Meiling Hong, Ying-Ming Zhang, and Yu Liu . Selective Binding Affinity between Quaternary Ammonium Cations and Water-Soluble Calix[4]resorcinarene. The Journal of Organic Chemistry 2015, 80 (3) , 1849-1855. https://doi.org/10.1021/jo502825z
  21. Igor Pochorovski and François Diederich . Development of Redox-Switchable Resorcin[4]arene Cavitands. Accounts of Chemical Research 2014, 47 (7) , 2096-2105. https://doi.org/10.1021/ar500104k
  22. Alexandra Nemkevich, Mark A. Spackman, and Ben Corry . Mechanism of Concerted Hydrogen Bond Reorientation in Clathrates of Dianin’s Compound and Hydroquinone. Journal of the American Chemical Society 2011, 133 (46) , 18880-18888. https://doi.org/10.1021/ja206962f
  23. Sándor Kunsági-Máté, Zsolt Csók, Koichi Iwata, Erzsébet Szász, and László Kollár . Role of the Conformational Freedom of the Skeleton in the Complex Formation Ability of Resorcinarene Derivatives toward a Neutral Phenol Guest. The Journal of Physical Chemistry B 2011, 115 (13) , 3339-3343. https://doi.org/10.1021/jp111145d
  24. S. Slovak, T. Evan-Salem, and Y. Cohen. Self-Assembly of a Hexameric Aggregate of a Lipophilic Calix[4]pyrrole−Resorcinarene Hybrid in Solution: A Diffusion NMR Study. Organic Letters 2010, 12 (21) , 4864-4867. https://doi.org/10.1021/ol1020114
  25. Rafal Kuzmicz, Violetta Kowalska, Sławomir Domagała, Marcin Stachowicz, Krzysztof Woźniak and Waclaw Kolodziejski. X-ray Diffraction, FT-IR, and 13C CP/MAS NMR Structural Studies of Solvated and Desolvated C-Methylcalix[4]resorcinarene. The Journal of Physical Chemistry B 2010, 114 (32) , 10311-10320. https://doi.org/10.1021/jp1015565
  26. N. Kodiah Beyeh, Arto Valkonen and Kari Rissanen. Piperazine Bridged Resorcinarene Cages. Organic Letters 2010, 12 (7) , 1392-1395. https://doi.org/10.1021/ol100407f
  27. Agustí Lledó, Richard J. Hooley and Julius Rebek, Jr.. Recognition of Guests by Water-Stabilized Cavitand Hosts. Organic Letters 2008, 10 (17) , 3669-3671. https://doi.org/10.1021/ol801228b
  28. Hiroshi Ito, Tomonari Nakayama, Mark Sherwood, Dolores Miller and Mitsuru Ueda. Characterization and Lithographic Application of Calix[4]resorcinarene Derivatives. Chemistry of Materials 2008, 20 (1) , 341-356. https://doi.org/10.1021/cm7021483
  29. Daniel Bratton,, Ramakrishnan Ayothi,, Hai Deng,, Heidi B. Cao, and, Christopher K. Ober. Diazonaphthoquinone Molecular Glass Photoresists:  Patterning without Chemical Amplification. Chemistry of Materials 2007, 19 (15) , 3780-3786. https://doi.org/10.1021/cm062967t
  30. Kannupal Srinivasan and, Bruce C. Gibb. Electrophilic Substitution of Deep Cavity Cavitands:  Selective Exo Functionalization of Molecular Concavity. Organic Letters 2007, 9 (5) , 745-748. https://doi.org/10.1021/ol062897w
  31. Anton L. Maksimov,, Dimitri A. Sakharov,, Tatyana Yu. Filippova,, Anna Ya. Zhuchkova, and, Edward A. Karakhanov. Supramolecular Catalysts on the Basis of Molecules−Receptors. Industrial & Engineering Chemistry Research 2005, 44 (23) , 8644-8653. https://doi.org/10.1021/ie0502436
  32. Ivy Philip and, Angel E. Kaifer. Noncovalent Encapsulation of Cobaltocenium inside Resorcinarene Molecular Capsules. The Journal of Organic Chemistry 2005, 70 (5) , 1558-1564. https://doi.org/10.1021/jo047892w
  33. Avijit Saha,, Sandip K. Nayak,, Subrata Chattopadhyay, and, Asok K. Mukherjee. Study of Charge Transfer Interactions of a Resorcin[4]arene with [60]- and [70]Fullerenes by the Absorption Spectrometric Method. The Journal of Physical Chemistry A 2004, 108 (40) , 8223-8228. https://doi.org/10.1021/jp048573b
  34. Frank Davis,, Elaine Frary, and, Charles J. M. Stirling. Changing Surface Hydro- and Oleophobicity with Resorcinarene MultilayersA Simple Water/Oil Proofing Process. Langmuir 2004, 20 (21) , 9075-9079. https://doi.org/10.1021/la048455f
  35. Liat Avram and, Yoram Cohen. Hexameric Capsules of Lipophilic Pyrogallolarene and Resorcinarene in Solutions as Probed by Diffusion NMR:  One Hydroxyl Makes the Difference. Organic Letters 2003, 5 (18) , 3329-3332. https://doi.org/10.1021/ol035211y
  36. Liat Avram and, Yoram Cohen. Effect of a Cationic Guest on the Characteristics of the Molecular Capsule of Resorcinarene:  A Diffusion NMR Study. Organic Letters 2003, 5 (7) , 1099-1102. https://doi.org/10.1021/ol034156q
  37. Marko Mäkinen, Pirjo Vainiotalo, Maija Nissinen, Kari Rissanen. Ammonium ion mediated resorcarene capsules: ESI-FTICRMS study on gas-phase structure and ammonium ion affinity of tetraethyl resorcarene and its per-methylated derivative. Journal of the American Society for Mass Spectrometry 2003, 14 (2) , 143-151. https://doi.org/10.1016/S1044-0305(02)00863-2
  38. Liat Avram and, Yoram Cohen. The Role of Water Molecules in a Resorcinarene Capsule As Probed by NMR Diffusion Measurements. Organic Letters 2002, 4 (24) , 4365-4368. https://doi.org/10.1021/ol0271077
  39. Ivy E. Philip and, Angel E. Kaifer. Electrochemically Driven Formation of a Molecular Capsule around the Ferrocenium Ion. Journal of the American Chemical Society 2002, 124 (43) , 12678-12679. https://doi.org/10.1021/ja028202d
  40. Joshua J. Pak,, John Greaves,, Dianne J. McCord, and, K. J. Shea. Diastereoselective Self-Assembly of a Pentacoordinate Siliconate Tetraanionic Molecular Square. A Mechanistic Investigation. Organometallics 2002, 21 (17) , 3552-3561. https://doi.org/10.1021/om020263x
  41. Marko Mäkinen, Pirjo Vainiotalo, Kari Rissanen. Alkali metal mediated resorcarene capsules: An ESI-FTICRMS study on gas-phase structure and cation binding of tetraethyl resorcarene and its per-methylated derivative. Journal of the American Society for Mass Spectrometry 2002, 13 (7) , 851-861. https://doi.org/10.1016/S1044-0305(02)00382-3
  42. Oskar Middel,, Willem Verboom,, Ron Hulst,, Huub Kooijman,, Anthony L. Spek, and, David N. Reinhoudt. Bridging of Resorcin[4]arenes in the Chair Conformation to Cavitands Having Two Pairs of Axial and Equatorial Substituents. The Journal of Organic Chemistry 1998, 63 (23) , 8259-8265. https://doi.org/10.1021/jo9810258
  43. Mitsuru Ueda,, Daisuke Takahashi,, Tomonari Nakayama, and, Osamu Haba. Three-Component Negative-Type Photoresist Based on Calix[4]resorcinarene, a Cross-linker, and a Photoacid Generator. Chemistry of Materials 1998, 10 (8) , 2230-2234. https://doi.org/10.1021/cm980166n
  44. Patrick T. Lewis and, Robert M. Strongin. Resorcinarenes with Deepened Polyaromatic Lower Cavities:  Synthesis and Structure. The Journal of Organic Chemistry 1998, 63 (17) , 6065-6067. https://doi.org/10.1021/jo9806557
  45. Harold Boerrigter,, Willem Verboom, and, David N. Reinhoudt. Novel Resorcinarene Cavitand-Based CMP(O) Cation Ligands:  Synthesis and Extraction Properties. The Journal of Organic Chemistry 1997, 62 (21) , 7148-7155. https://doi.org/10.1021/jo9703414
  46. Wei Xu,, Jagadese J. Vittal, and, Richard J. Puddephatt. Anionic Calixarene Complexes of Copper(I) and Silver(I) as Cation Receptors. Inorganic Chemistry 1997, 36 (1) , 86-94. https://doi.org/10.1021/ic960508w
  47. Hang Xu, Shaokang Wang, Fengmin Wu, Qinlin Yuan, Yafei Guo, Yinke Zhang, Xuefeng Wei, Jun Zhang. A fully-organic polymerization carrier calix[4]resorcinarene supported cobalt ionic liquid catalyst with oxone for desulfurization. Fuel 2022, 318 , 123670. https://doi.org/10.1016/j.fuel.2022.123670
  48. Jing-Long Liu, Meng Sun, Yan-Hui Shi, Xin-Min Zhou, Pei-Zhi Zhang, Ai-Quan Jia, Qian-Feng Zhang. Functional modification, self-assembly and application of calix[4]resorcinarenes. Journal of Inclusion Phenomena and Macrocyclic Chemistry 2022, 102 (3-4) , 201-233. https://doi.org/10.1007/s10847-021-01119-w
  49. Ryo Sekiya, Kentaro Harada, Natsumi Nitta, Takeharu Haino. Resorcinarene-Based Supramolecular Capsules: Supramolecular Functions and Applications. Synlett 2022, 33 (06) , 518-530. https://doi.org/10.1055/a-1679-8141
  50. Sheida Hamid, Arash Mouradzadegun. 3D-Network porous polymer bonded metalloporphyrin: An efficient and reusable catalyst for the Baeyer-Villiger oxidation. Journal of Porphyrins and Phthalocyanines 2022, 26 (02) , 171-179. https://doi.org/10.1142/S1088424621501273
  51. Arash Mouradzadegun, Sheida Hamid, Asiyeh Sheikhzadeh Takabi. Synthesis and characterization of porous organic polymer containing tailored AB3 metalloporphyrin: highly active and reusable catalyst for oxidation of benzyl alcohol. Research on Chemical Intermediates 2021, 47 (12) , 4943-4955. https://doi.org/10.1007/s11164-021-04563-y
  52. Paolo Della Sala, Costanza Vanni, Carmen Talotta, Luca Di Marino, Camilla Matassini, Andrea Goti, Placido Neri, Sergej Šesták, Francesca Cardona, Carmine Gaeta. Multivalent resorcinarene clusters decorated with DAB-1 inhitopes: targeting Golgi α-mannosidase from Drosophila melanogaster. Organic Chemistry Frontiers 2021, 8 (23) , 6648-6656. https://doi.org/10.1039/D1QO01048D
  53. Alireza Gharehkhani, Ramin Ghorbani-vaghei, Sedigheh Alavinia. Synthesis of calixresorcarenes using magnetic poly triazine-benzene sulfonamide-SO 3 H. RSC Advances 2021, 11 (59) , 37514-37527. https://doi.org/10.1039/D1RA07393A
  54. Yufeng Yao, Jiayi Yuan, Ming Shen, Bin Du. Hexylresorcinol calix[4]arene-assisted synthesis of ZnO–Au micro–nano materials with enhanced photodegradation performance to degrade harmful organic compounds. Inorganic Chemistry Frontiers 2021, 8 (22) , 4903-4913. https://doi.org/10.1039/D1QI00968K
  55. Mahsa Alsadat Mostafavi, Arash Mouradzadegun. Reinforced polymeric nanocomposites of the Amino-Decorated Polycalix[4]resorcinarene with graphene oxide and reduced graphene oxide as promising candidates in materials science. Materials Science and Engineering: B 2021, 271 , 115273. https://doi.org/10.1016/j.mseb.2021.115273
  56. Krisfian Tata Aneka Priyangga, Yehezkiel Steven Kurniawan, Leny Yuliati. The Role of a Nitro Substituent in C ‐Phenylcalix[4]resorcinarenes to Enhance the Adsorption of Gold(III) Ions. ChemistrySelect 2021, 6 (21) , 5366-5373. https://doi.org/10.1002/slct.202101067
  57. Sheida Hamid, Arash Mouradzadegun. Design and Synthesis of Supramolecular Polymer Network Equipped with Pd-porphyrin: An Efficient and Recoverable Heterogeneous Catalyst for C–C Coupling Reactions. Catalysis Letters 2021, 151 (3) , 658-669. https://doi.org/10.1007/s10562-020-03344-3
  58. Dominic Danielsiek, Gerald Dyker. An Adaptive Resorcinarene Hemicarcerand. European Journal of Organic Chemistry 2021, 2021 (6) , 1026-1034. https://doi.org/10.1002/ejoc.202001582
  59. Jing-Long Liu, Bei-Bei Zhang, Ai-Quan Jia, Zhi-Feng Xin, Qian-Feng Zhang. Functionalized resorcinarene as organic template for preparation of gold nanoparticles. Journal of Inclusion Phenomena and Macrocyclic Chemistry 2021, 99 (1-2) , 79-86. https://doi.org/10.1007/s10847-020-01030-w
  60. Jinal A. Gajjar, Rajesh H. Vekariya, Vinay S. Sharma, Seema N. Kher, Dhanji P. Rajani, Hitesh M. Parekh. Mesomorphic properties, microwave-assisted synthesis, and antimicrobial evaluation of novel Schiff base functionalized resorcin[4]arene derivatives. Molecular Crystals and Liquid Crystals 2021, 715 (1) , 37-55. https://doi.org/10.1080/15421406.2020.1856615
  61. Suren J. Nemat, Dietger Van den Eynden, Loren Deblock, Michael Heilmann, Jesper M. Köster, Mahsa Parvizian, Konrad Tiefenbacher, Jonathan De Roo. Resorcin[4]arene-based multidentate phosphate ligands with superior binding affinity for nanocrystal surfaces. Chemical Communications 2021, 15 https://doi.org/10.1039/D1CC00223F
  62. Alver Castillo-Aguirre, Miguel Angel Esteso, Mauricio Maldonado. Resorcin[4]arenes: Generalities and Their Role in the Modification and Detection of Amino Acids. Current Organic Chemistry 2020, 24 (21) , 2412-2425. https://doi.org/10.2174/1385272824999200510232141
  63. Dmitrii Semenok, Alexey Kletskov, Vladimir Burilov, Sergey Luchkin, Vladimir Potkin, Oleg Lukin. Photopolymerized two-dimensional organic films with calix[4]arene scaffold. Materials Today Communications 2020, 25 , 101334. https://doi.org/10.1016/j.mtcomm.2020.101334
  64. Sheida Hamid, Arash Mouradzadegun. Metalloporphyrin supported on hyper cross-linked polymer: green protocol for reduction of nitroarenes. Journal of Inclusion Phenomena and Macrocyclic Chemistry 2020, 98 (3-4) , 213-221. https://doi.org/10.1007/s10847-020-01021-x
  65. Dominic Danielsiek, Gerald Dyker. DISTAL Dibromoresorcin[4]arenes Through Selective Deactivation: A Practical Optimization. European Journal of Organic Chemistry 2020, 2020 (42) , 6570-6575. https://doi.org/10.1002/ejoc.202001031
  66. Daisuke Shimoyama, Takeharu Haino. Feet‐to‐Feet‐Connected Multitopic Resorcinarene Macrocycles. Asian Journal of Organic Chemistry 2020, 9 (11) , 1718-1725. https://doi.org/10.1002/ajoc.202000302
  67. Víctor García‐López, Michal Zalibera, Nils Trapp, Martin Kuss‐Petermann, Oliver S. Wenger, François Diederich. Stimuli‐Responsive Resorcin[4]arene Cavitands: Toward Visible‐Light‐Activated Molecular Grippers. Chemistry – A European Journal 2020, 26 (50) , 11451-11461. https://doi.org/10.1002/chem.202001788
  68. Tímea R. Kégl, Tamás Kégl. Palladium-catalyzed carbonylative synthesis and theoretical study of elongated tubular cavitands. Journal of Organometallic Chemistry 2020, 923 , 121387. https://doi.org/10.1016/j.jorganchem.2020.121387
  69. Saber Mirzaei, Edison Castro, Raúl Hernández Sánchez. Tubularenes. Chemical Science 2020, 11 (31) , 8089-8094. https://doi.org/10.1039/D0SC03384G
  70. Jumina, Yoga Priastomo, Hamid Rohma Setiawan, Mutmainah, Yehezkiel Steven Kurniawan, Keisuke Ohto. Simultaneous removal of lead(II), chromium(III), and copper(II) heavy metal ions through an adsorption process using C-phenylcalix[4]pyrogallolarene material. Journal of Environmental Chemical Engineering 2020, 8 (4) , 103971. https://doi.org/10.1016/j.jece.2020.103971
  71. A.M. Shebitha, S.S. Sreejith, P.B. Sherly Mole, Nithya Mohan, G. Avudaiappan, K. Hiba, K.S. Priya, K. Sreekumar. Facile synthesis, X-ray diffraction studies, photophysical properties and DFT-D based conformational analysis of octa and dodecacyanomethoxycalix[4]resorcinarenes. Journal of Molecular Structure 2020, 1214 , 128215. https://doi.org/10.1016/j.molstruc.2020.128215
  72. Daisuke Shimoyama, Ryo Sekiya, Hiroyuki Maekawa, Hiroto Kudo, Takeharu Haino. One-dimensional arrangement of NORIA in the solid-state. CrystEngComm 2020, 22 (28) , 4740-4747. https://doi.org/10.1039/D0CE00650E
  73. José Luis Casas-Hinestroza, Miguel Ángel Vela Suazo, Mauricio Maldonado Villamil. Experimental Comparative Study of Dynamic Behavior in Solution Phase of C-Tetra(phenyl)resorcin[4]arene and C-Tetra(phenyl)pyrogallol[4]arene. Molecules 2020, 25 (10) , 2275. https://doi.org/10.3390/molecules25102275
  74. Yufeng Yao, Yongcai Zhang, Ming Shen, Weizheng Li, Weiwei Xia. The facile synthesis and enhanced photocatalytic properties of [email protected] modified with Ag0 via in-situ ion exchange. Colloids and Surfaces A: Physicochemical and Engineering Aspects 2020, 591 , 124556. https://doi.org/10.1016/j.colsurfa.2020.124556
  75. Alver A. Castillo-Aguirre, Adrián Pérez-Redondo, Mauricio Maldonado. Influence of the hydrogen bond on the iteroselective O-alkylation of calix[4]resorcinarenes. Journal of Molecular Structure 2020, 1202 , 127402. https://doi.org/10.1016/j.molstruc.2019.127402
  76. T. Yu. Sergeeva, I. R. Nizameev, K. V. Kholin, M. K. Kadirov, A. I. Samigullina, A. T. Gubaidullin, R. K. Mukhitova, A. Yu. Ziganshina, I. S. Antipin. Polymer and supramolecular nanocontainers based on carboxylate derivatives of resorcinarenes for binding of substrates and design of composites for catalysis. Russian Chemical Bulletin 2020, 69 (2) , 351-359. https://doi.org/10.1007/s11172-020-2767-x
  77. Astrid Velásquez-Silva, Roger Sarmiento Forero, Edilma Sanabria, Adrián Pérez-Redondo, Mauricio Maldonado. Host-guest inclusion systems of tetra(alkyl)resorcin [4]arenes with choline in DMSO: Dynamic NMR studies and X-ray structural characterization of the 1:1 inclusion complex. Journal of Molecular Structure 2019, 1198 , 126846. https://doi.org/10.1016/j.molstruc.2019.07.093
  78. Irina R. Knyazeva, Victor V. Syakaev, Olga A. Lodochnikova, Alexander R. Burilov. Synthesis and structure of new chlorine containing calix[4]resorcinols. Mendeleev Communications 2019, 29 (6) , 700-701. https://doi.org/10.1016/j.mencom.2019.11.034
  79. Guddekoppa S. Ananthnag, Dipanjan Mondal, Joel T. Mague, Maravanji S. Balakrishna. Synthesis of tetra-pincer nickel( ii ) and palladium( ii ) complexes of resorcin[4]arene-octophosphinite [Res(OPR 2 ) 8 ] and rhodium-catalyzed regioselective hydroformylation reaction. Dalton Transactions 2019, 48 (39) , 14632-14641. https://doi.org/10.1039/C9DT02499A
  80. Francesca Guagnini, Alessandro Pedrini, Timothy M. Swager, Chiara Massera, Enrico Dalcanale. Solvent-responsive cavitand lanthanum complex. Dalton Transactions 2019, 48 (36) , 13732-13739. https://doi.org/10.1039/C9DT03199E
  81. Arnab Dawn, Xue Yao, Ying Yu, Jianxiong Jiang, Harshita Kumari. Assessment of the in vitro toxicity of calixarenes and a metal-seamed calixarene: a chemical pathway for clinical application. Supramolecular Chemistry 2019, 31 (7) , 425-431. https://doi.org/10.1080/10610278.2019.1616732
  82. Irina R. Knyazeva, Victoria I. Matveeva, Vera V. Khrizanforova, Victor V. Syakaev, Yulia H. Budnikova, Wolf D. Habicher, Alexander R. Burilov. Click reaction in the synthesis of novel thiophosphorylated ligands for electrochemical hydrogen evolution. Mendeleev Communications 2019, 29 (4) , 388-390. https://doi.org/10.1016/j.mencom.2019.07.009
  83. Arash Mouradzadegun, Mohammad Reza Ganjali, Neda Kheirandish, Fatemeh Abadast. A reactive and environmentally friendly protocol for expeditious synthesis of various resorcinarenes using zinc hydrogen sulfate. Supramolecular Chemistry 2019, 31 (6) , 377-381. https://doi.org/10.1080/10610278.2019.1598557
  84. Yufeng Yao, Jia Fan, Ming Shen, Weizheng Li, Bin Du, Xue Li, Jingtao Dai. One-step synthesis of hexylresorcinol calix[4]arene-capped ZnO–Ag nanocomposites for enhanced degradation of organic pollutants. Journal of Colloid and Interface Science 2019, 546 , 70-82. https://doi.org/10.1016/j.jcis.2019.03.021
  85. Diana M. Galindres, Ana C.F. Ribeiro, Artur J.M. Valente, Miguel A. Esteso, Edilma Sanabria, Edgar F. Vargas, Luis M.P. Verissimo, Derek G. Leaist. Ionic conductivities and diffusion coefficients of alkyl substituted sulfonated resorcinarenes in aqueous solutions. The Journal of Chemical Thermodynamics 2019, 133 , 223-228. https://doi.org/10.1016/j.jct.2019.02.018
  86. Pellegrino La Manna, Annunziata Soriente, Margherita De Rosa, Antonio Buonerba, Carmen Talotta, Carmine Gaeta, Placido Neri. Green, Mild, and Efficient Friedel–Crafts Benzylation of Scarcely Reactive Arenes and Heteroarenes under On‐Water Conditions. ChemSusChem 2019, 12 (8) , 1673-1683. https://doi.org/10.1002/cssc.201900137
  87. Alver A. Castillo-Aguirre, Zuly Jenny Rivera Monroy, Mauricio Maldonado. Analysis by RP-HPLC and Purification by RP-SPE of the C -Tetra( p -hydroxyphenyl)resorcinolarene Crown and Chair Stereoisomers. Journal of Analytical Methods in Chemistry 2019, 2019 , 1-6. https://doi.org/10.1155/2019/2051282
  88. Santiago D. Salas, María T. Baumgartner, Alicia V. Veglia. Alkyl chain length and metallic cation effects on the acid-base properties of C-alkylresorcin[4]arenes in aqueous media. Journal of Molecular Liquids 2019, 277 , 769-775. https://doi.org/10.1016/j.molliq.2018.12.140
  89. A. Mouradzadegun, M. A. Mostafavi, M. R. Ganjali. A Facile and Green Synthesis of 2,4,6-Triarylpyridine Derivatives Using the Modified Mesoporous Organic Polymer Based on Calix [4]Resorcinarene: As an Efficient and Reusable Heterogeneous Acidic Catalyst. Kinetics and Catalysis 2019, 60 (2) , 187-195. https://doi.org/10.1134/S0023158419020071
  90. Karolina Stefańska, Anna Szafraniec, Marek P. Szymański, Michał Wierzbicki, Agnieszka Szumna, Waldemar Iwanek. Chiral chromane[4]arenes synthesised by cycloaddition reactions of o -quinomethine resorcin[4]arenes. New Journal of Chemistry 2019, 43 (6) , 2687-2693. https://doi.org/10.1039/C8NJ06179C
  91. Roberta Pinalli, Jakub W. Trzciński, Enrico Dalcanale, Chiara Massera. A new, deep quinoxaline-based cavitand receptor for the complexation of benzene. Acta Crystallographica Section E Crystallographic Communications 2019, 75 (2) , 103-108. https://doi.org/10.1107/S2056989018017784
  92. Sanjoy Das, Malay K. Das. Surface Modification of Resorcinarene-Based Self-Assembled Solid Lipid Nanoparticles for Drug Targeting. 2019,,, 311-329. https://doi.org/10.1007/978-3-030-06115-9_16
  93. Bartosz Setner, Agnieszka Szumna. Complexation of chiral amines by resorcin[4]arene sulfonic acids in polar media – circular dichroism and diffusion studies of chirality transfer and solvent dependence. Beilstein Journal of Organic Chemistry 2019, 15 , 1913-1924. https://doi.org/10.3762/bjoc.15.187
  94. Anniina Kiesilä, Jani O Moilanen, Anneli Kruve, Christoph A Schalley, Perdita Barran, Elina Kalenius. Anion-driven encapsulation of cationic guests inside pyridine[4]arene dimers. Beilstein Journal of Organic Chemistry 2019, 15 , 2486-2492. https://doi.org/10.3762/bjoc.15.241
  95. Alessandro Pedrini, Federico Bertani, Enrico Dalcanale. Fluorinated Tetraphosphonate Cavitands. Molecules 2018, 23 (10) , 2670. https://doi.org/10.3390/molecules23102670
  96. Diana C. Riveros, Glenn Hefter, Edgar F. Vargas. Thermodynamic evidence for nano-heterogeneity in solutions of the macrocycle C-butylresorcin[4]arene in non-aqueous solvents. The Journal of Chemical Thermodynamics 2018, 125 , 250-256. https://doi.org/10.1016/j.jct.2018.06.006
  97. Arash Mouradzadegun, Mahsa Alsadat Mostafavi. Design and synthesis of a new porous organic polymer equipped with N-propyl sulfamic acid functionalities: As an efficient heterogeneous catalyst for the synthesis of 1,8-dioxo-octahydroxanthene derivatives. Polymer Engineering & Science 2018, 58 (8) , 1362-1370. https://doi.org/10.1002/pen.24722
  98. Arash Mouradzadegun, Mahsa Alsadat Mostafavi, Mohammad Reza Ganjali. A novel sulfamic acid functionalized nano-catalyst on the basis of calix[4]resorcinarene for the green one-pot synthesis of 2H-indazolo[2,1-b]phthalazine-triones under thermal solvent-free conditions. Reaction Kinetics, Mechanisms and Catalysis 2018, 124 (2) , 741-755. https://doi.org/10.1007/s11144-018-1363-7
  99. Haunani M. Thomas, Harshita Kumari, Julia Maddalena, Collin M. Mayhan, Lindsey T. Ellis, John E. Adams, Carol A. Deakyne. Conformational preference and dynamics of pyrogallol[4]arene: stability, interconversion, and solvent influence. Supramolecular Chemistry 2018, 30 (5-6) , 520-532. https://doi.org/10.1080/10610278.2018.1433831
  100. Arash Mouradzadegun, Mahsa Alsadat Mostafavi, Mohammad Reza Ganjali. Sulfamic acid functionalized 3D-network nanoporous polymer based on calix[4]resorcinarene: a recyclable heterogeneous nanocatalyst for the efficient synthesis of 14-aryl-14H-dibenzo[a,j]xanthenes under thermal neat conditions. Journal of Inclusion Phenomena and Macrocyclic Chemistry 2018, 91 (1-2) , 25-36. https://doi.org/10.1007/s10847-018-0792-2
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