<?xml version="1.0" encoding="ISO-8859-1"?><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance">
<front>
<journal-meta>
<journal-id>0122-7483</journal-id>
<journal-title><![CDATA[Universitas Scientiarum]]></journal-title>
<abbrev-journal-title><![CDATA[Univ. Sci.]]></abbrev-journal-title>
<issn>0122-7483</issn>
<publisher>
<publisher-name><![CDATA[Facultad de Ciencias de la Pontificia Universidad Javeriana de Bogotá.]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0122-74832014000200005</article-id>
<title-group>
<article-title xml:lang="en"><![CDATA[Theoretical indications on the relationship between pyrogallol&#91;4&#93;arenes dynamics of assembling and geometry]]></article-title>
<article-title xml:lang="es"><![CDATA[Indicios teóricos entre la relación dinámica de ensamblaje y geometría de pirogalol&#91;4&#93;arenos]]></article-title>
<article-title xml:lang="pt"><![CDATA[Indícios teóricos sobre a relação entre dinâmica de montagem e geometria de pirogalol&#91;4&#93;arenos]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[A. Cazar]]></surname>
<given-names><![CDATA[Robert]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Torres]]></surname>
<given-names><![CDATA[F. Javier]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,ESPOCH Facultad de Ciencias ]]></institution>
<addr-line><![CDATA[Riobamba ]]></addr-line>
<country>Ecuador</country>
</aff>
<aff id="A02">
<institution><![CDATA[,Universidad San Francisco de Quito  ]]></institution>
<addr-line><![CDATA[ ]]></addr-line>
<country>Ecuador</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>08</month>
<year>2014</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>08</month>
<year>2014</year>
</pub-date>
<volume>19</volume>
<numero>2</numero>
<fpage>133</fpage>
<lpage>137</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_arttext&amp;pid=S0122-74832014000200005&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_abstract&amp;pid=S0122-74832014000200005&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_pdf&amp;pid=S0122-74832014000200005&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="es"><p><![CDATA[Los pirogalol&#91;4&#93;arenos son macrociclos con gran potencial como bloques de construcción de nanocápsulas. Los dímeros precursores del 2,8,14,20-tetrametilpirogalol&#91;4&#93;areno y del 2,8,14,20-tetrafenilpirogalol&#91;4&#93;areno se estudiaron teóricamente para obtener entendimiento acerca de la dinámica de ensamble de estos compuestos. Las curvas de energía potencial a lo largo del ángulo de torsión del enlace R-pirogalol)CH-(R-pirogalol) de los dímeros han sido calculadas al nivel de teoría B3LYP/6-311G(d,p). Se encontró que las barreras de energía para rotación libre en torno al enlace seleccionado son 0.00133 Hartrees para el dímero con sustituyentes alquílicos y 0.77879 Hartrees para aquél con sustituyentes arílicos. Estos valores implican que la rotación libre en torno al enlace seleccionado es permitida para el primer dímero pero es prohibida para el segundo. Puesto que las orientaciones del sustituyente y el anillo de pirogalol en torno a este enlace posiblemente determinan la geometría de la estructura final, parece razonable proponer que el pirogalol&#91;4&#93;areno con sustituyentes alquílicos más probablemente adoptará una geometría de corona, mientras que el pirogalol&#91;4&#93;areno con sustituyentes arílicos mas probablemente adoptará una geometría de silla. Estas previsiones están en acuerdo con evidencia experimental la cual demuestra que la geometría de los pirogalol&#91;4&#93;arenos es dependiente del tipo de sustituyentes presentes en ellos.]]></p></abstract>
<abstract abstract-type="short" xml:lang="pt"><p><![CDATA[O pyrogalol &#91;4&#93;arenes são macrocycles com grande potencial como blocos de construção da nanocapsules. Os dímeros precursores de 2,8,14,20-tetrametilpirogalol&#91;4&#93;arene e 2,8,14,20-tetrafenilpirogalol&#91;4&#93;arene foram estudados teoricamente para obter uma compreensão sobre a dinâmica do monte destes compostos. As curvas de energia potencial ao longo do ângulo de torção da link R-pkogdol)CH-(R-pirogalol) dos dímeros foram calculados ao nível da teoria B3LYP/ 6-311G(d,p). Verificou que as barreiras de energia da rotação livre em torno do link selecionado é 0,00133 Hartrees para ao dímero com substituintes alquil e 0,77879 Hartrees para que com substituintes aril. Esses valores implicam que a livre rotação em torno da link seleccionado é permitido para o primeiro dímero mas é proibida para o segundo. Uma vez que a orientação dos substituintes e o anel de pyrogalol em torno deste link possivelmente determinar a geometria da estrutura final, parece razoável sugerir que o pyrogalol&#91;4&#93;arene com substituintes alquil mais provavelmente vai ter uma geometria da copa, enquanto o pyrogalol&#91;4&#93;arene com substituintes resíduo mais provavelmente irá ter uma geometría de cadeira. Estas previsões estão de acordo com evidências experimentais que demonstram que a geometria do pyrogalol&#91;4&#93;arenes é dependente do tipo de substituintes presentes nos mesmos.]]></p></abstract>
<abstract abstract-type="short" xml:lang="en"><p><![CDATA[Pyrogallol&#91;4&#93;arenes are macrocycles with high potential as building blocks for nanocapsules. We theoretically studied the dimeric precursors of 2,8,14,20-tetramethylpyrogaUol&#91;4&#93;arene and 2,8,10,14-tetraphenylpyrogallol&#91;4&#93; arene to understand the dynamics of assembly of these compounds, and calculated the potential energy curves along the torsion angle of the (R-pyrogallol)CH-(R-pyrogallol) dimeric bond at the B3LYP/6-311G(d,p) level of theory. We found that the energy barriers for free rotation around the selected bond are 0.00133 Hartrees for the alkyl-substituted dimer and 0.77879 Hartrees for the aryl-substituted dimer. These values imply that the free rotation around the selected bond exists for the first dimer but not for the second one. Because the orientation of the substituent and the pyrogallol ring around this bond are likely to determine the geometry of the final structure, we propose that the alkyl-substituted compound will most likely adopt a crown-shaped geometry whereas the aryl-substituted compound will adopt a chair-shaped geometry. These predictions concur with experimental evidence, which shows that the geometry of pyrogallol&#91;4&#93;arenes depends on the substituents attached to them.]]></p></abstract>
<kwd-group>
<kwd lng="es"><![CDATA[Pirogalol&#91;4&#093]]></kwd>
<kwd lng="es"><![CDATA[arenos]]></kwd>
<kwd lng="es"><![CDATA[química computacional]]></kwd>
<kwd lng="es"><![CDATA[nanocápsulas]]></kwd>
<kwd lng="pt"><![CDATA[Pyrogallol]]></kwd>
<kwd lng="pt"><![CDATA[arenos]]></kwd>
<kwd lng="pt"><![CDATA[química computacional]]></kwd>
<kwd lng="pt"><![CDATA[nano-cápsulas]]></kwd>
<kwd lng="en"><![CDATA[Pyrogallol&#091]]></kwd>
<kwd lng="en"><![CDATA[arenes]]></kwd>
<kwd lng="en"><![CDATA[computational chemistry]]></kwd>
<kwd lng="en"><![CDATA[nanocapsules]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[  <font size="2" face="verdana">     <p align="center"><font size=4><b>Theoretical indications on the relationship between pyrogallol&#91;4&#93;arenes dynamics of assembling and geometry</b></font></p>     <p align="center"><font size=3><b>Indicios te&oacute;ricos entre la relaci&oacute;n din&aacute;mica de ensamblaje y geometr&iacute;a de pirogalol&#91;4&#93;arenos</b></font></p>     <p align="center"><font size=3><b>Ind&iacute;cios te&oacute;ricos sobre a rela&ccedil;&atilde;o entre din&acirc;mica de montagem e geometria de pirogalol&#91;4&#93;arenos</b></font></p>     <p align="center"><b>Robert A. Cazar<sup>1,2</sup>, F. Javier Torres<sup>2,3</sup></b></p>     <p>Edited by Beynor Paez &amp; Alberto Acosta</p>     <p><sup>1</sup>ESPOCH, Facultad de Ciencias, Panamericana Sur Km 1.5, Riobamba, Ecuador    <br> <sup>2</sup>Grupo Ecuatoriano para el Estudio Experimental y Te&oacute;rico de Nanosistemas,-GETNano.    <br> <sup>3</sup>Grupo de Qu&iacute;mica Computacional y Te&oacute;rica (QCT-USFQ), Universidad San Francisco de Quito, Diego de Robles y V&iacute;a Interoce&aacute;nica, Quito 17-1200-841, Ecuador.</p>     <p>Funding: Consorcio Ecuatoriano para el Desarrollo de Internet Avanzado, CEDIA.    ]]></body>
<body><![CDATA[<br> Electronic supplementary material: NA</p>     <p>Received: 22-11-2013 Accepted: 25-03-2014 Published on line: 08-05-2014</p> <hr>     <p align="center"><b>Para citar este art&iacute;culo / To cite this article</b></p>     <p>Cazar RA, Torres FJ (2014) Theoretical indications on the relationship between pyrogallol&#91;4&#93;arenes dynamics of assembling and geometry. <i>Universitas Scientiarum </i>19(2): 133-137 doi: 10.11144/Javeriana.SC19-2.tirb</p> <hr>     <p><font size=3><b>Resumen</b></font></p>     <p>Los pirogalol&#91;4&#93;arenos son macrociclos con gran potencial como bloques de construcci&oacute;n de nanoc&aacute;psulas. Los d&iacute;meros precursores del 2,8,14,20-tetrametilpirogalol&#91;4&#93;areno y del 2,8,14,20-tetrafenilpirogalol&#91;4&#93;areno se estudiaron te&oacute;ricamente para obtener entendimiento acerca de la din&aacute;mica de ensamble de estos compuestos. Las curvas de energ&iacute;a potencial a lo largo del &aacute;ngulo de torsi&oacute;n del enlace R-pirogalol)CH-(R-pirogalol) de los d&iacute;meros han sido calculadas al nivel de teor&iacute;a B3LYP/6-311G(d,p). Se encontr&oacute; que las barreras de energ&iacute;a para rotaci&oacute;n libre en torno al enlace seleccionado son 0.00133 Hartrees para el d&iacute;mero con sustituyentes alqu&iacute;licos y 0.77879 Hartrees para aqu&eacute;l con sustituyentes ar&iacute;licos. Estos valores implican que la rotaci&oacute;n libre en torno al enlace seleccionado es permitida para el primer d&iacute;mero pero es prohibida para el segundo. Puesto que las orientaciones del sustituyente y el anillo de pirogalol en torno a este enlace posiblemente determinan la geometr&iacute;a de la estructura final, parece razonable proponer que el pirogalol&#91;4&#93;areno con sustituyentes alqu&iacute;licos m&aacute;s probablemente adoptar&aacute; una geometr&iacute;a de corona, mientras que el pirogalol&#91;4&#93;areno con sustituyentes ar&iacute;licos mas probablemente adoptar&aacute; una geometr&iacute;a de silla. Estas previsiones est&aacute;n en acuerdo con evidencia experimental la cual demuestra que la geometr&iacute;a de los pirogalol&#91;4&#93;arenos es dependiente del tipo de sustituyentes presentes en ellos.</p>     <p><b>Palabras clave: </b>Pirogalol&#91;4&#93;arenos; qu&iacute;mica computacional; nanoc&aacute;psulas.</p <hr>     <p><font size=3><b>Abstract</b></font></p>     <p>Pyrogallol&#91;4&#93;arenes are macrocycles with high potential as building blocks for nanocapsules. We theoretically studied the dimeric precursors of 2,8,14,20-tetramethylpyrogaUol&#91;4&#93;arene and 2,8,10,14-tetraphenylpyrogallol&#91;4&#93; arene to understand the dynamics of assembly of these compounds, and calculated the potential energy curves along the torsion angle of the (R-pyrogallol)CH-(R-pyrogallol) dimeric bond at the B3LYP/6-311G(d,p) level of theory. We found that the energy barriers for free rotation around the selected bond are 0.00133 Hartrees for the alkyl-substituted dimer and 0.77879 Hartrees for the aryl-substituted dimer. These values imply that the free rotation around the selected bond exists for the first dimer but not for the second one. Because the orientation of the substituent and the pyrogallol ring around this bond are likely to determine the geometry of the final structure, we propose that the alkyl-substituted compound will most likely adopt a crown-shaped geometry whereas the aryl-substituted compound will adopt a chair-shaped geometry. These predictions concur with experimental evidence, which shows that the geometry of pyrogallol&#91;4&#93;arenes depends on the substituents attached to them.</p>     <p><b>Keywords: </b>Pyrogallol&#91;4&#93;arenes; computational chemistry; nanocapsules.</p>  <hr>     ]]></body>
<body><![CDATA[<p><font size=3><b>Resumo</b></font></p>     <p>O pyrogalol &#91;4&#93;arenes s&atilde;o macrocycles com grande potencial como blocos de constru&ccedil;&atilde;o da nanocapsules. Os d&iacute;meros precursores de 2,8,14,20-tetrametilpirogalol&#91;4&#93;arene e 2,8,14,20-tetrafenilpirogalol&#91;4&#93;arene foram estudados teoricamente para obter uma compreens&atilde;o sobre a din&acirc;mica do monte destes compostos. As curvas de energia potencial ao longo do &acirc;ngulo de tor&ccedil;&atilde;o da link R-pkogdol)CH-(R-pirogalol) dos d&iacute;meros foram calculados ao n&iacute;vel da teoria B3LYP/ 6-311G(d,p). Verificou que as barreiras de energia da rota&ccedil;&atilde;o livre em torno do link selecionado &eacute; 0,00133 Hartrees para ao d&iacute;mero com substituintes alquil e 0,77879 Hartrees para que com substituintes aril. Esses valores implicam que a livre rota&ccedil;&atilde;o em torno da link seleccionado &eacute; permitido para o primeiro d&iacute;mero mas &eacute; proibida para o segundo. Uma vez que a orienta&ccedil;&atilde;o dos substituintes e o anel de pyrogalol em torno deste link possivelmente determinar a geometria da estrutura final, parece razo&aacute;vel sugerir que o pyrogalol&#91;4&#93;arene com substituintes alquil mais provavelmente vai ter uma geometria da copa, enquanto o pyrogalol&#91;4&#93;arene com substituintes res&iacute;duo mais provavelmente ir&aacute; ter uma geometr&iacute;a de cadeira. Estas previs&otilde;es est&atilde;o de acordo com evid&ecirc;ncias experimentais que demonstram que a geometria do pyrogalol&#91;4&#93;arenes &eacute; dependente do tipo de substituintes presentes nos mesmos.</p>     <p><b>Palavras-chave: </b>Pyrogallol&#91;4&#93;arenos; qu&iacute;mica computacional; nano-c&aacute;psulas.</p> <hr>      <p><font size=3><b>Introducci&oacute;n</b></font></p>     <p>Pyrogallol&#91;4&#93;arenes (<a href="#f1">Figure 1</a>) are macrocycles that provide dimeric and hexameric capsules and other assemblies with an internal volume large enough to accommodate and transport a variety of molecules and ions (Gerkensmeier et al. 1999, Atwood et al. 2001, Shivanyuk &amp; Rebek 2001, Loustarinen et al. 2004, Maertz et al. 2010). Projected applications of these compounds include their usage as molecular filters, nano-carriers, nano-reactors and gas-storage units (Antesberger et al. 2005, Purse &amp; Rebek 2005, Avram &amp; Cohen 2006, Bassil et al. 2007, Jin et al. 2008, Dalgarno et al. 2009, Scott et al. 2009).</p>     <center><a name="f1"><img src="img/revistas/unsc/v19n2/v19n2a05f1.jpg"></a></center>     <p>Pyrogallol&#91;4&#93;arenes are obtained by the acid-catalyzed condensation of a pyrogallol and an aldehyde (Hoegberg 1980). Depending on the aldehyde used in the reaction, two stereoisomers are most commonly produced. A crown-shaped conformer, denoted as <i>rccc, </i>is obtained when alkyl aldehydes are utilized; and a chair-shaped conformer, denoted <i>rctt, </i>is obtained when aryl aldehydes are utilized, denoted <i>rctt </i>is obtained (Gerkensmeier et al. 2001, Zambrano et al. 2010). In this work, we performed theoretical calculations (Jensen 2007) to obtain indications on the relationship between the dynamics of assembling of alkyl and aryl substituted pyrogallol&#91;4&#93;arenes and their final geometries (Weilnet &amp; Schneider 1991, McKinlay et al. 2005). This information could be useful to project new, relevant applications of these compounds, such as their use as molecular hydrogen storage materials (Urbina et al. 2011, Gokel &amp; Saeedeh 2013).</p>     <p><font size=3><b>Materials and methods</b></font></p>     <p>We calculated the potential energy curves along the torsion angle of the (R-pyrogallol)CH&mdash; (R-pyrogallol) bond of the dimeric precursors of 2,8,14,20-tetramethylpyrogallol&#91;4&#93;arene and 2,8,14,20-tetramethylpyrogallol&#91;4&#93; arene using density functional theory (Koch &amp; Holthausen 2001, Peverati &amp; Baldridge 2008). A scheme of the dimers is shown in <a href="#f2">Figure 2</a>; it highlights the bond that controls macrocycle assembly. We consider that the orientations adopted by the substituent and the pyrogallol ring with respect to such bond is likely to determine the geometry of the final product.</p>     <center><a name="f2"><img src="img/revistas/unsc/v19n2/v19n2a04f2.jpg"></a></center>     ]]></body>
<body><![CDATA[<p>To generate the potential energy curves, we obtained the equilibrium geometries of the dimers at the B3LYP/6-311G(d,p) level of theory and used them as starting points of the curves. We then calculated the single-point energies of the structures; this was obtained by gradually increasing the torsion angle of the selected bond in increments of five degrees in the interval of zero to 180 degrees. The structure energy versus torsion angle increment data was plotted. All the calculations were performed using a Gaussian 09 software package (Frisch et al. 2009).</p>     <p><font size=3><b>Results and discussion</b></font></p>     <p>The potential energy curve along the torsion angle of the selected bond for the precursor of the 2,8,14,20-tetramethylpyrogallol&#91;4&#93;arene is shown in <a href="#f3">Figure 3</a>. This curve displays a minimum which corresponds to the starting structure, that is, the dimer equilibrium geometry and a maximum located at a torsion angle increment of 70 degrees. The energy difference between these two points provides the energy barrier for free rotation around the selected bond. This barrier is calculated to be 0.00133 Hartrees (8.3 kcal/mol). This value is low enough to suggest that, when R = methyl, the substituent and the pyrogallol ring can freely rotate around that bond and readily reorient from their initial positions with respect to the bond as the compound is assembled. That would lead to the formation of the crown-like conformer as the final product.</p>     <center><a name="f3"><img src="img/revistas/unsc/v19n2/v19n2a04f3.jpg"></a></center>     <p>The potential energy curve along the torsion angle of the selected bond for the precursor of the 2,8,14,20-tetraphenylpyrogallol&#91;4&#93;arene is displayed in Figure 4. In this curve the minimum corresponds to the dimer equilibrium geometry and the maximum occurs at a torsion angle increment of 70 degrees. The energy barrier for free rotation around the selected bond is calculated to be 0.77879 Hartrees (488.7 kcal/mol). This high value implies that, when R = phenyl, the substituent and the pyrogallol ring may not rotate around that bond and remain in their original positions with respect to the bond as the compound is assembled. That would lead to the chair-like conformer as the final product.</p>     <p>These predictions concur with experimental evidence that has found that the most stable products for alkyl- and aryl-substituted pyrogallol&#91;4&#93;arenes adopt the <i>rccc </i>and <i>rctt </i>conformations, respectively (Barret et al. 2007, Thomas 2011).</p>     <p><font size=3><b>Conclusion</b></font></p>     <p>We conducted a theoretical study of the dimers precursors of 2,8,14,20-tetra-methylpyrogallol&#91;4&#93; arene and 2,8,10,14-tetra-phenylpyrogallol&#91;4&#93;arene, and calculated the potential energy curves along the torsion angle of a selected bond of the dimers to get theoretical indications regarding the relationship</p>     <p>between the dynamics of assembly and the geometry of the final products. The results suggest that alkyl substituents lead to the <i>rccc </i>conformation while aryl substituents would lead to the <i>rctt </i>conformation. Such indications are in agreement with experimental evidence.</p>     <p><font size=3><b>Acknowledgements</b></font></p>     ]]></body>
<body><![CDATA[<p>The authors wish to acknowledge the support of the Consorcio Ecuatoriano para el Desarrollo de Internet Avanzado, CEDIA, which provided the funds for this research (Grant CEPRA VI-2013-02).</p>     <p><font size=3><b>Conflicts of interest</b></font></p>     <p>The authors declare that there are no conflicts of interest regarding the results published in this work.</p> <hr>     <p><font size=3><b>References</b></font></p>     <!-- ref --><p>Antesberger J, Cave GW Ferrarelli MC, Heaven MW Raston CL, Atwood JL (2005). Solvent-Free, Direct Synthesis of Supramolecular Nano-capsules. <i>Chemical Communications </i>7:892-894.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=000047&pid=S0122-7483201400020000500001&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     <!-- ref --><p>Atwood J, Barbour L, Jerga, A (2001). Hydrogen-Bonded Molecular Capsules are Stable in Polar Media. <i>Chemical Communications </i>22:2376-2377.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=000049&pid=S0122-7483201400020000500002&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     <!-- ref --><p>Avram L &amp; Cohen Y (2006). Molecules at Close Range: Encapsulated Solvent Molecules in Pyrogallol&#91;4&#93; arene Hexameric Capsules. <i>Organic Letters </i>8:219-222.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=000051&pid=S0122-7483201400020000500003&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     ]]></body>
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