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Dive into the research topics where Silvia Reboredo is active.

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Featured researches published by Silvia Reboredo.


Chemistry: A European Journal | 2013

Chiral Hypervalent Iodine Reagents: Synthesis and Reactivity

Alejandro Parra; Silvia Reboredo

Chiral hypervalent iodine chemistry has been steadily increasing in importance in recent years. This review catalogues enantioselective transformations triggered by chiral hypervalent iodine(III/V) reagents, in stoichiometric or catalytic quantities, highlighting the different reactivities in terms of yield and enantioselectivity. Moreover, the synthesis of the most remarkable and successful catalysts has been illustrated in detail.


Accounts of Chemical Research | 2014

Chiral Fullerenes from Asymmetric Catalysis

Enrique E. Maroto; Marta Izquierdo; Silvia Reboredo; Juan Marco-Martínez; Salvatore Filippone; Nazario Martín

Fullerenes are among the most studied molecules during the last three decades, and therefore, a huge number of chemical reactions have been tested on these new carbon allotropes. However, the aim of most of the reactions carried out on fullerenes has been to afford chemically modified fullerenes that are soluble in organic solvents or even water in the search for different mechanical, optical, or electronic properties. Therefore, although a lot of effort has been devoted to the chemical functionalization of these molecular allotropes of carbon, important aspects in the chemistry of fullerenes have not been properly addressed. In particular, the synthesis of chiral fullerenes at will in an efficient manner using asymmetric catalysis has not been previously addressed in fullerene science. Thus, despite the fact that the chirality of fullerenes has always been considered a fundamental issue, the lack of a general stereoselective synthetic methodology has restricted the use of enantiopure fullerene derivatives, which have usually been obtained only after highly expensive HPLC isolation on specific chiral columns or prepared from a pool of chiral starting materials. In this Account, we describe the first stereodivergent catalytic enantioselective syntheses in fullerene science, which have allowed the highly efficient synthesis of enantiomerically pure derivatives with total control of the stereochemical result using metallic catalysts and/or organocatalysts under very mild conditions. Density functional theory calculations strongly support the experimental findings for the assignment of the absolute configuration of the new stereocenters, which has also been ascertained by application of the sector rule and single-crystal X-ray diffraction. The use of the curved double bond of fullerene cages as a two-π-electron component in a variety of stereoselective cycloaddition reactions represents a challenging goal considering that, in contrast to most of the substituted olefins used in these reactions, pristine fullerene is a noncoordinating dipolarophile. The aforementioned features make the study of stereoselective 1,3-dipolar cycloadditions onto fullerenes a unique scenario to shed light onto important mechanistic aspects. On the other hand, the availability of achiral starting materials as well as the use of nonexpensive asymmetric catalysts should provide access to chiral fullerenes and their further application in a variety of different fields. In this regard, in addition to biomedical applications, chiral fullerenes are of interest in less-studied areas such as materials science, organic electronics, and nanoscience, where control of the order and morphology at the nanometer scale are critical issues for achieving better device efficiencies.


Journal of the American Chemical Society | 2014

Enantioselective Cycloaddition of Münchnones onto [60]Fullerene: Organocatalysis versus Metal Catalysis

Juan Marco-Martínez; Silvia Reboredo; Marta Izquierdo; Vanesa Marcos; Juan Luis López; Salvatore Filippone; Nazario Martín

Novel chiral catalytic systems based on both organic compounds and metal salts have been developed for the enantioselective [3 + 2] cycloaddition of münchnones onto fullerenes and olefins. These two different approaches proved to be efficient and complementary in the synthesis of optically active pyrrolino[3,4:1,2][60]fullerenes with high levels of enantiomeric excess and moderate to good conversions. Further functionalization of the pyrrolinofullerene carboxylic acid derivatives has been carried out by esterification and amidation reactions.


Angewandte Chemie | 2012

Asymmetric Synthesis of Cyclobutanes by a Formal [2+2] Cycloaddition Controlled by Dienamine Catalysis

Alejandro Parra; Silvia Reboredo; José Alemán

Trap it: A combination of aminocatalysis with H-bonding activation is used in two new approaches to carry out formal enantioselective organocatalyzed [2+2] cycloaddition reactions. This cooperative catalysis solves the inconveniences associated with this transformation. These two new reactions will open opportunities to find reactivities involving other organocatalytic cycloadditions.


Chemistry: A European Journal | 2016

Cyclobuteno[60]fullerenes as Efficient n‐Type Organic Semiconductors

Silvia Reboredo; Rosa M. Girón; Salvatore Filippone; Tsubasa Mikie; Tsuneaki Sakurai; Shu Seki; Nazario Martín

Cyclobuteno[3,4:1,2][60]fullerenes have been prepared in a straightforward manner by a simple reaction between [60]fullerene and readily available allenoates or alkynoates as organic reagents under basic and mild conditions. The chemical structure of the new modified fullerenes has been determined by standard spectroscopic techniques and confirmed by X-ray diffraction analysis. Some of these new fullerene derivatives exhibit a remarkable intrinsic electron mobility (determined by using flash-photolysis time-resolved microwave conductivity (FP-TRMC) measurements), which surpasses that of the well-known phenyl-C61-butyric acid methyl ester, thus behaving as promising n-type organic semiconductors.


Angewandte Chemie | 2013

Asymmetric Organocatalysis in Fullerenes Chemistry: Enantioselective Phosphine‐catalyzed Cycloaddition of Allenoates onto C60

Juan Marco-Martínez; Vanesa Marcos; Silvia Reboredo; Salvatore Filippone; Nazario Martín


Organic and Biomolecular Chemistry | 2012

Metallic organophosphates as catalysts in asymmetric synthesis: a return journey

Alejandro Parra; Silvia Reboredo; Ana M. Martín Castro; José Alemán


Angewandte Chemie | 2012

Asymmetrische Synthese von Cyclobutanen über eine formale, durch Dienaminkatalyse kontrollierte [2+2]-Cycloaddition†

Alejandro Parra; Silvia Reboredo; José Alemán


Faraday Discussions | 2014

Organocatalysis for new chiral fullerene-based materials

Rosa M. Girón; Silvia Reboredo; Juan Marco-Martínez; Salvatore Filippone; Nazario Martín


ChemInform | 2013

Trienamines: Their Key Role in Extended Organocatalysis for Diels-Alder Reactions

Silvia Reboredo; Alejandro Parra; José Alemán

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Nazario Martín

Complutense University of Madrid

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Salvatore Filippone

Complutense University of Madrid

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Alejandro Parra

Autonomous University of Madrid

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Juan Marco-Martínez

Complutense University of Madrid

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José Alemán

Autonomous University of Madrid

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Vanesa Marcos

University of Manchester

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Marta Izquierdo

Complutense University of Madrid

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Rosa M. Girón

Complutense University of Madrid

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Ana M. Martín Castro

Autonomous University of Madrid

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Enrique E. Maroto

Complutense University of Madrid

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