
<!--/moldoveanu/wp-json/wp/v2/pages/238-->{"id":238,"date":"2013-12-20T09:08:30","date_gmt":"2013-12-20T07:08:30","guid":{"rendered":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/?page_id=238"},"modified":"2014-01-09T11:01:50","modified_gmt":"2014-01-09T09:01:50","slug":"an-iii-2013","status":"publish","type":"page","link":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/contract-te\/reports\/an-iii-2013\/","title":{"rendered":"An III 2013"},"content":{"rendered":"<div class=\"indent1\">\n<div class=\"indent\">\n<h2>Third stage report<\/h2>\n<ul class=\"list1\">\n<li><a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2013\/12\/syntheticreport.pdf\">2013. Stage III. Synthesis and structural analysis of new imidazolium hexafluorophosphates as potential ionic liquids, and of new bis-imidazole derivatives. Testing the properties and structural analysis for the synthesized compounds.<\/a><\/li>\n<\/ul>\n<p><b><i>II.2., II.3.,<\/i><\/b><b><i> II.4., II.5. si II.6.<\/i><\/b><b><i> Synthesis of cycloadducts derived from imidazolium salts (obtained in stage II.1.) by [3+2] dipolar cycloaddition with activated alkynes and alkenes.<\/i><\/b><\/p>\n<p>In this stage was investigated the reaction of the benzimidazolium salts <b>5d <\/b>with dimethylacetilenedicarboxilate (DMAD). We have done first the reaction in chloroform, and the reaction product is the totally aromatized and in the same time with the ester group from the first position hidrolized <b>6<\/b>.<br \/>\nIn order to elucidate the influence of the solvent over the hydrolysis that occurs, we repeated the reaction in benzene and in methanol. In benzene we obtained only the hydrolyzed product\u00a0<b>6<\/b>, while in methanol we have obtained both hydrolyzed\u00a0<b>6<\/b>\u00a0and un-hydrolyzed cycloadduct <b>7<\/b>. Un-hydrolyzed product is the minor product.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_1.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_1.jpg\" width=\"500\" height=\"165\" \/><\/a><br \/>\nRecently, due to the fact that we had access to an X-ray diffractometer, we were able to determine the exact structure of compound 6 which turned out to be:<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_fig_1.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_fig_1.jpg\" width=\"500\" height=\"167\" \/><\/a><br \/>\nA re-analysis of the NMR spectra has determined that the signals of the protons and carbons of the spectra were consistent with the proposed structure.<br \/>\nThe structure of the compound <b>6<\/b> being established precisely we raised the question of the reaction mechanism by which this compound is obtained. We assumed that the cycloaddition reaction conclude to an unstable imidazo-dihydropyrrolo derivative, with a pronounced tendency for aromatization of the pyrrole ring. In the aromatization process the imidazole ring is opened, the pyrrole ring is aromatizated by tautomerism, then is followed by a pyrrole ring rotation of 180 degrees around the N3-C4 bond (from the initial imidazole ring). Finally there is a new 6-membered ring closure by elimination of a methanol molecule.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_2.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_2.jpg\" width=\"600\" height=\"120\" \/><\/a><br \/>\nIn order to confirm the proposed mechanism was also investigated the reaction of salts <b>5a<\/b>, <b>5b<\/b>, <b>5c<\/b> and <b>5e<\/b> with dimethylacetylenedicarboxylate (DMAD).<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_3.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_3.jpg\" width=\"600\" height=\"388\" \/><\/a><br \/>\nIn the case of the salts <b>5a<\/b> and <b>5e<\/b> were identified and isolated both <b>7a<\/b> and <b>7e<\/b> cyclized products and <b>8a<\/b> and <b>8e<\/b> products with aromatic pyrrole ring but with imidazole ring open. In the case of the salt <b>5c<\/b> was isolated only cyclized product <b>7c<\/b> while in the case of the <b>5b<\/b> salt we have isolated only the intermediate <b>8b<\/b>. Moreover for this intermediate we managed to register the X-ray spectrum, and the structure we found is the same with the proposed structure and thus confirms the proposed mechanism:<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_fig_2.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_fig_2.jpg\" width=\"500\" height=\"226\" \/><\/a><br \/>\nThe way the aromatization of the cycloaddition product take place (by pyrrole ring opening) explains the failure of isolation of the cycloaddition products in the case of imidazolium salts and even benzimidazolium salt in the case of the reaction with the activated alkene. Previously has been investigated reaction of the salt <b>5a<\/b> with N-ethylmaleinimide (NEtMI). Unfortunately, the attempts to separate and identify the reaction products have failed.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_4.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_4.jpg\" width=\"600\" height=\"140\" \/><\/a><\/p>\n<p><b><i>III.1. Synthesis of new imidazolium hexafluorophosfaes from corresponding halides (obtained in stage II.1.) by anion metathesis.<\/i><\/b><br \/>\nWe managed the reaction of the salts <b>5a<\/b> and <b>5c<\/b> with aqueous solution of KPF<sub>6<\/sub>.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_5.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_5.jpg\" width=\"600\" height=\"192\" \/><\/a><br \/>\nIn the case of the salt <b>5c<\/b> the reaction was successful, In the case of the salt <b>5a<\/b> we have encountered difficulties in removing the potassium bromide formed in the reaction since hexafluorophosphate <b>9a<\/b> is also soluble in water. In order to eliminate this drawback we decided to use another methodology anion metathesis, a methodology that does not require the use of aqueous solution and in which the halide elimination is easier. So we decided to apply a method found in literature that involves treating imidazolium halides with dimethyl sulfate, and we treated the salt <b>4f<\/b> with dimethyl sulfate. The NMR spectrum of the isolated product was consistent with the proposed structure for methylsulfate <b>10f<\/b>.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_6.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_6.jpg\" width=\"600\" height=\"98\" \/><\/a><br \/>\nIn present we extend this reaction to the other imidazolium halides.<\/p>\n<p><b><i>III.2. Synthesis of the aliphatic spacers.<\/i><\/b><br \/>\nAliphatic spacers were obtained by the reaction of the chloroacyl chlorides (chloroacetyl, chloropropionyl and chlorobutiryl) with diamino derivatives (1,2-diaminoethane, 1,3-diaminopropane, 1,4-diaminobutane and 1,6-diaminohexane).<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_7.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_7.jpg\" width=\"600\" height=\"102\" \/><\/a><br \/>\nThe compounds were synthesized and spectral characterized.<\/p>\n<p><b><i>III.3. <\/i><\/b><b><i>Synthesis of the aromatic spacers<\/i><\/b><b><i>.<\/i><\/b><br \/>\nAromatic spacers were obtained by the reaction of the chloroacyl chlorides (chloroacetyl, chloropropionyl and chlorobutiryl) with aromatic diamines (<i>o-<\/i>, <i>m-<\/i> and <i>p-<\/i>phenylene diamine).<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_8.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_8.jpg\" width=\"600\" height=\"97\" \/><\/a><br \/>\nThe compounds were synthesized and spectral characterized.<\/p>\n<p><b><i>III.4.\u00a0<\/i><\/b><b><i>Synthesis of the <\/i><\/b><b><i>bis-imidazo derivatives with<\/i><\/b><b><i> aliphatic spacers.<\/i><\/b><br \/>\nBis-imidazo derivatives with aliphatic spacers were obtained by the reaction of the aliphatic spacers (obtained in stage III.2) with sodium imidazolate.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_9.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_9.jpg\" width=\"600\" height=\"122\" \/><\/a><br \/>\nThe compounds were synthesized and spectral characterized.<\/p>\n<p><b><i>III.5. <\/i><\/b><b><i>Synthesis of the <\/i><\/b><b><i>bis-imidazo derivatives with<\/i><\/b><b><i> aromatic spacers.<\/i><\/b><br \/>\nBis-imidazo derivatives with aromatic spacers were obtained by the reaction of the aromatic spacers (obtained in stage III.3) with sodium imidazolate.<br \/>\n<a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_10.jpg\" rel=\"lightbox[238]\"><img loading=\"lazy\" class=\"alignnone  wp-image-124\" alt=\"\" src=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/files\/2014\/01\/rap2013Eng_sch_10.jpg\" width=\"600\" height=\"124\" \/><\/a><\/p>\n<p><b>The structure of the new compounds was or will be chemical (elemental analysis) and spectral determined (IR, UV-VIS, NMR, MS).<\/b><\/p>\n<p>The structure of the compounds was proved for all imidazole derivatives by elemental analysis and spectral analyses. Were recorded and solved IR, UV-VIS, RAMAN, MS, RMN and DRX spectra. All the elemental and spectral data are in accordance with the proposed structure.<\/p>\n<p><b>Project\u2019s web page<\/b>: <a href=\"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/contract-te\/\">http:\/\/teclu.chem.uaic.ro\/moldoveanu\/contract-te\/<\/a>, was continuous updated with the scientific reports.<\/p>\n<p><b><i>\u00a0A part of the obtained results were organized to be published in journals and presented on a series of national and international conferences as following<\/i><\/b><b><i>:<\/i><\/b><\/p>\n<p><b>One paper accepted for publication<\/b>:<\/p>\n<ol start=\"1\">\n<li>D. Astefanei, N. Buzgar, M. Risca, <b><span style=\"text-decoration: underline\">C. Moldoveanu<\/span><\/b>, I. Mangalagiu: \u201eSynthesis, SERS, Raman and FT-IR investigation in conjunction with DFT theoretical simulations on N-(2-cyanoethyl)-imidazole. Part I\u201d; <i>Revista de Chimie,<\/i><b> 64(x)<\/b>, xxx-xxx, <b>2013<\/b>. (ISSN: 0034-7752) accepted.<\/li>\n<\/ol>\n<p><b>4 papers presented on national and international conferences:<\/b><\/p>\n<ol>\n<li><b><span style=\"text-decoration: underline\">C. Moldoveanu<\/span><\/b>, Ghe. Zbancioc, D. Mantu, P. M. Stiuleac, I. O. Silea, I. Mangalagiu Sinteza de noi lichide ionice cu schelet imidazolic Zilele Universitatii \u201cAl. I. Cuza-Iasi\u201c, 31 Octombrie &#8211; 1 Noiembrie<b> 2013<\/b>, (Poster ).<\/li>\n<\/ol>\n<ol start=\"2\">\n<li>Ghe. Zbancioc, <b><span style=\"text-decoration: underline\">C. Moldoveanu<\/span><\/b>, D. Maftei, V. Antoci, I. Mangalagiu: Sinteza \u015fi elucidarea structurii unor noi derivati de pirrolo-imidazol fluorescenti Zilele Universitatii \u201cAl. I. Cuza-Iasi\u201c, 31 Octombrie &#8211; 1 Noiembrie<b> 2013<\/b>, (Poster ).<\/li>\n<li>Mantu, D.; <b><span style=\"text-decoration: underline\">Moldoveanu, C.<\/span><\/b>; Zbancioc, G.; Antoci, V.; Stoian, I.; Mangalagiu, I.: \u201eSynthesis of new ionic liquids imidazole based\u201d XIV European Symposium on Organic Reactivity ESOR 2013, 1-6 September <b>2013<\/b>, Prague, Czech Republic. (poster 69).<\/li>\n<li>Zbancioc, G.; Maftei D.; <b><span style=\"text-decoration: underline\">Moldoveanu, C.<\/span><\/b>; Zbancioc, A.M.; Tataringa, G.; Mangalagiu, I.: \u201eSynthesis and XRD Structure Elucidation of new Fluorescent Pyrrolo-imidazole\u201d XIV European Symposium on Organic Reactivity ESOR <b>2013<\/b>, 1-6 September 2013, Prague, Czech Republic. (poster 137)<\/li>\n<\/ol>\n<p>In present we work on data organization in view of the publication of two papers in ISI cited journals.<\/p>\n<\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>Third stage report 2013. Stage III. Synthesis and structural analysis of new imidazolium hexafluorophosphates as potential ionic liquids, and of new bis-imidazole derivatives. Testing the properties and structural analysis for the synthesized compounds. II.2., II.3., II.4., II.5. si II.6. Synthesis of cycloadducts derived from imidazolium salts (obtained in stage II.1.) by [3+2] dipolar cycloaddition with [&hellip;]<\/p>\n","protected":false},"author":64,"featured_media":0,"parent":88,"menu_order":3,"comment_status":"closed","ping_status":"closed","template":"","meta":[],"_links":{"self":[{"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/pages\/238"}],"collection":[{"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/users\/64"}],"replies":[{"embeddable":true,"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/comments?post=238"}],"version-history":[{"count":23,"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/pages\/238\/revisions"}],"predecessor-version":[{"id":241,"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/pages\/238\/revisions\/241"}],"up":[{"embeddable":true,"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/pages\/88"}],"wp:attachment":[{"href":"http:\/\/teclu.chem.uaic.ro\/moldoveanu\/wp-json\/wp\/v2\/media?parent=238"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}