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1-tosyl-3-vinyl-2,5-dihydro-1H-pyrrole is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

161374-36-3

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161374-36-3 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 161374-36-3 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,6,1,3,7 and 4 respectively; the second part has 2 digits, 3 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 161374-36:
(8*1)+(7*6)+(6*1)+(5*3)+(4*7)+(3*4)+(2*3)+(1*6)=123
123 % 10 = 3
So 161374-36-3 is a valid CAS Registry Number.

161374-36-3Relevant academic research and scientific papers

Platinum-catalyzed cycloisomerization reactions of enynes

Fuerstner,Stelzer,Szillat

, p. 11863 - 11869 (2001)

PtCl2 constitutes an efficient and practical catalyst for a set of different atom economical rearrangement reactions of enynes. This includes (i) a formal enyne metathesis reaction delivering 1,3-dienes, (ii) the formation of polycyclic vinylcy

Highly active catalysts in alkene metathesis: First observed transformation of allenylidene into indenylidene via alkenylcarbyne-ruthenium species

Castarlenas, Ricardo,Dixneuf, Pierre H.

, p. 4524 - 4527 (2003)

A cat. for all seasons: The transformation of the allenylidene-ruthenium complexes [RuCl(η6-arene) (=C=C=CR2) (PR′ 3)] [CF3SO3] into indenylidene species [RuCl(η6-arene) (indenylidene) (PR′

Ruthenabenzene: A Robust Precatalyst

Gupta, Saswata,Su, Siyuan,Zhang, Yu,Liu, Peng,Wink, Donald J.,Lee, Daesung

supporting information, p. 7490 - 7500 (2021/05/26)

Metallaaromatics constitute a unique class of aromatic compounds where one or more transition metal elements are incorporated into the aromatic system, the parent of which is metallabenzene. One of the main concerns about metallabenzenes generally deals with the structural characterization related to their relative aromaticity compared to the carbon archetype. Transition metal-containing metallabenzenes are also implicated in certain catalytic processes such as alkyne metathesis polymerization; however, these transition metal-based metallaaromatic compounds have not been developed as a catalyst. Herein, we describe an effective strategy to generate diverse arrays of ruthenabenzenes and demonstrated them as an aromatic equivalent of the Grubbs-type ruthenium alkylidene catalysts. These ruthenabenzenes can be prepared via an enyne metathesis and metallotropic [1,3]-shift cascade process to form alkyne-chelated ruthenium alkylidene intermediates followed by spontaneous cycloaromatization. The aromatic nature of these complexes was confirmed by spectroscopic and X-ray crystallographic data, and the mechanistic pathways for the cycloaromatization process were studied by DFT calculations. These ruthenabenzenes display robust catalytic activity for metathesis and other transformations, which illustrates that metallabenzenes are not only compounds of structural and theoretical interests but also are a novel platform for new catalyst development.

Access to Fused Pyrroles from Cyclic 1,3-Dienyl Boronic Esters and Arylnitroso Compounds

Fran?ois, Benjamin,Eberlin, Ludovic,Berrée, Fabienne,Whiting, Andrew,Carboni, Bertrand

, p. 5173 - 5182 (2020/05/18)

Complimentary to classical hydroboration and boron-Wittig reactions, a new, efficient access to cyclic 1,3-dienyl boronic esters has been developed via diene or triene metathesis. Subsequently, fused pyrroles were synthesized with a broad substrate scope

Gold(I) Complexes Nuclearity in Constrained Ferrocenyl Diphosphines: Dramatic Effect in Gold-Catalyzed Enyne Cycloisomerization

Nguyen, Tuan-Anh,Roger, Julien,Nasrallah, Houssein,Rampazzi, Vincent,Fournier, Sophie,Cattey, Hélène,Sosa Carrizo, E. Daiann,Fleurat-Lessard, Paul,Devillers, Charles H.,Pirio, Nadine,Lucas, Dominique,Hierso, Jean-Cyrille

supporting information, p. 2879 - 2885 (2020/08/13)

Di-tert-butylated-bis(phosphino)ferrocene ligands bearing phosphino substituents R (R=phenyl, cyclohexyl, iso-propyl, mesityl, or furyl) allow tuning the selective formation of Au(I) halide complexes. Thus, dinuclear linear two-coordinate, but also rare mononuclear trigonal three-coordinate and tetrahedral four-coordinate complexes were formed upon tuning of the conditions. Both Au(I) chloride and rarer Au(I) iodide complexes were synthesized, and their X-ray diffraction analysis are reported. The significance of the control of structure and nuclearity in Au(I) complexes is further illustrated herein by its strong effect on the efficiency and selectivity of gold-catalysed cycloisomerization. Cationic linear digold(I) bis(dicyclohexylphosphino) ferrocenes outperform other catalysts in the demanding regioselective cycloisomerization of enyne sulphonamides into cyclohexadienes. Conversely, tetrahedral and trigonal cationic monogold(I) complexes were found incompetent for enyne cycloaddition. We used the two-coordinate linear electron-rich Au(I) complex 2 b (R=Cy) to extend the scope of selective intramolecular cycloaddition of different 1,6-enyne sulfonylamines with high activity and excellent selectivity to the endo cyclohexadiene products.

Ruthenium dihydride complexes as enyne metathesis catalysts

Dolan, Martin A.,Dixon, Alexandre D.C.,Chisholm, John D.,Clark, Daniel A.

supporting information, p. 4471 - 4474 (2018/11/23)

Ruthenium–catalyzed enyne metathesis is a reliable and efficient method for the formation of 1,3-dienes, a common structural motif in synthetic organic chemistry. The development of new transition-metal complexes competent to catalyze enyne metathesis rea

A six-coordinated cationic ruthenium carbyne complex with liable pyridine ligands: Synthesis, structure, catalytic investigation, and DFT study on initiation mechanism

Liu, Guiyan,Zheng, Lu,Shao, Mingbo,Zhang, Huizhu,Qiao, Weixia,Wang, Xiaojia,Liu, Bowen,Zhao, Haitao,Wang, Jianhui

supporting information, p. 4718 - 4725 (2014/06/24)

A novel six-coordinated high-valence cationic ruthenium carbyne complex bearing two liable pyridine ligands was prepared in high yield by the reaction of the ruthenium-based complex (IMesH2)(Cl)2(C 5H5N)2RuCHPh [IMesH2=1,3-dimesityl- 4,5-dihydroimida-zol-2-ylidene] with excess iodine as an oxidant in CH 2Cl2 at 25 °C under N2. The new ruthenium carbyne-based complex shows moderate to good catalytic activity for ring-closing metathesis reactions. Importantly, no double bond isomerization by-product was produced at elevated reaction temperatures (100 °C-137 °C) in the reaction catalyzed by the synthesized ruthenium carbyne complex. A mechanism involving the in situ conversion of the ruthenium carbyne through the addition of an iodide to the carbyne carbon was also proposed, and DFT calculations were performed to explain the initiating mechanism.

Gold phosphole complexes as efficient catalysts for alkyne activation

Fourmy, Kevin,Mallet-Ladeira, Sonia,Dechy-Cabaret, Odile,Gouygou, Maryse

supporting information, p. 1571 - 1574 (2013/05/08)

Gold(I) complexes bearing monophosphole ligands were synthesized, and their electronic and steric properties were compared to those of their triphenylphosphine-based counterparts. Cationic phosphole-based gold(I) complexes are active and selective in enyne cycloisomerization and in olefin cyclopropanation, with a good correlation between the ligand σ-donor ability and the catalytic activity. For the most efficient ligand, 1-phenyl-2,3,4,5-tetramethylphosphole (TMP), a highly active, selective, and stable cationic [Au(TMP)(CH3CN)]SbF6 complex was isolated.

Correlation between functionality preference of ru carbenes and exo / endo product selectivity for clarifying the mechanism of ring-closing enyne metathesis

Lee, Ok Suk,Kim, Kyung Hwan,Kim, Jinwoo,Kwon, Kuktae,Ok, Taedong,Ihee, Hyotcherl,Lee, Hee-Yoon,Sohn, Jeong-Hun

, p. 8242 - 8249 (2013/09/24)

Functionality preferences of metathesis Ru carbenes to various alkenes and alkynes with electronic and steric diversity were determined by using time-dependent fluorescence quenching. The functionality preferences depend not only on the properties of mult

A unique ruthenium carbyne complex: A highly thermo-endurable catalyst for olefin metathesis

Wang, Jianhui,Shao, Mingbo,Zheng, Lu,Qiao, Weixia,Wang, Jingjing

supporting information, p. 2743 - 2750,8 (2012/12/12)

A cationic ruthenium carbyne complex was prepared and was found to initiate olefin metathesis reactions with good activities, which throws a new light on the design of a new type of ruthenium catalyst for RCM reactions. More importantly, no double bond isomerized by-product was observed even at elevated temperatures in reactions catalyzed by the new carbyne complex. A mechanism involving the in situ conversion of the ruthenium carbyne to a ruthenium carbene complex via addition of an iodide to the carbyne carbon was also proposed.

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