Pyrimidine reactions. Part XX. Thermal rearrangement of 5-(p-substituted phenyl)-2(and 4)-methoxypyrimidines
Journal of the Chemical Society C: Organic Pub Date: DOI: 10.1039/J39700000214
Abstract
2(and 4)-Methoxy-5-phenylpyrimidine and some p-substituted derivatives are rearranged by heating in triethylamine to give the corresponding N-methyl-2(or 4)-oxopyrimidines. The log k1 values for rearrangement of the 2-methoxypyrimidines show a rectilinear relationship to the known σ values for p-substituted phenyl groups, save when such values are highly negative. 4-Methoxy-5-phenylpyrimidine and its p-nitro-derivative rearrange more rapidly than their respective 2-methoxy-isomers; in addition, each gives a mixture of N-1 and N-3 methylated products in which the latter predominates. These facts are consistent with the recently proposed intermolecular and ionic nature of such rearrangements. Some of the intermediate 2-hydroxy-5-phenylpyrimidines and their N-methyl derivatives are made by a novel modification of the principal pyrimidine synthesis, namely condensation of urea or N-methylurea with 3-imino-2-phenylpropionaldehyde or a derivative. 1H N.m.r. and u.v. spectra are used to follow rearrangements and to confirm structures.
Recommended Literature
- [1] Enabling high-throughput single-animal gene-expression studies with molecular and micro-scale technologies Jason WanLab Chip, 2020,20, 4528-4538 10.1039/D0LC00881H
- [2] Excimer and exciplex formation in a pair of bright phosphorescent isomers constructed from Cu3(pyrazolate)3 and Cu3I3 coordination luminophores? Shun-Ze Zhan,Mian Li,Xiao-Ping Zhou,Dan Li,Seik Weng NgRSC Adv., 2011,1, 1457-1459 10.1039/C1RA00566A
- [3] EWOD-driven droplet microfluidic device integrated with optoelectronic tweezers as an automated platform for cellular isolation and analysis? Gaurav J. Shah,Eric P.-Y. Chiou,Ming C. Wu,Chang-Jin “CJ” KimLab Chip, 2009,9, 1732-1739 10.1039/B821508A
- [4] Exchangeability of amino acid residues with similar physicochemical properties in coiled-coil interactions? Guiying Zhang,Maosheng Cheng,Yanni Li,Keliang Liu,Lifeng CaiChem. Commun., 2013,49, 11086-11088 10.1039/C3CC46560H
- [5] Emergence of cationic polyamine dendrimersomes: design, stimuli sensitivity and potential biomedical applications Partha Laskar,Christine DufèsNanoscale Adv., 2021,3, 6007-6026 10.1039/D1NA00536G
- [6] Evolution of calcium phosphate precipitation in hanging drop vapor diffusion by in situRaman microspectroscopy Gloria Belén Ramírez-Rodríguez,José Manuel Delgado-López,Jaime Gómez-MoralesCrystEngComm, 2013,15, 2206-2212 10.1039/C2CE26556G
- [7] Establishing plasmon contribution to chemical reactions: alkoxyamines as a thermal probe? Olga Guselnikova,Gérard Audran,Jean-Patrick Joly,Andrii Trelin,Evgeny V. Tretyakov,Vaclav Svorcik,Oleksiy Lyutakov,Sylvain R. A. MarqueChem. Sci., 2021,12, 4154-4161 10.1039/D0SC06470J
- [8] Evolution study of photo-synthesized gold nanoparticles by spectral deconvolution model: a quantitative approach Chung-Sung Yang,Mong-Shian Shih,Fang-Yi ChangNew J. Chem., 2006,30, 729-735 10.1039/B516465F
- [9] Evolution of hierarchical porous structures in supramolecular guest–host hydrogels? Christopher B. Rodell,Christopher B. Highley,Minna H. Chen,Neville N. Dusaj,Chao Wang,Lin Han,Jason A. BurdickSoft Matter, 2016,12, 7839-7847 10.1039/C6SM01395C
- [10] Fe(ii)-Assisted one-pot synthesis of ultra-small core–shell Au–Pt nanoparticles as superior catalysts towards the HER and ORR? Yi Cao,Yujiao Xiahou,Lixiang Xing,Xiang Zhang,Hong Li,ChenShou Wu,Haibing XiaNanoscale, 2020,12, 20456-20466 10.1039/D0NR04995F
Journal Name:Journal of the Chemical Society C: Organic
research_products
-
CAS no.: 89640-58-4