Search results for "small molecule activation"

showing 5 items of 5 documents

Carbon Monoxide Activation by a Molecular Aluminium Imide: C−O Bond Cleavage and C−C Bond Formation

2020

Anionic molecular imide complexes of aluminium are accessible via a rational synthetic approach involving the reactions of organo azides with a potassium aluminyl reagent. In the case of K 2 [( NON )Al(NDipp)] 2 ( NON = 4,5‐bis(2,6‐di iso propylanilido)‐2,7‐di‐tert‐butyl‐9,9‐dimethyl‐xanthene; Dipp = 2,6‐di iso propylphenyl) structural characterization by X‐ray crystallography reveals a short Al‐N distance, which is thought to be due primarily to the low coordinate nature of the nitrogen centre. The Al‐N unit is highly polar, and capable of the activation of relatively inert chemical bonds, such as those found in dihydrogen and carbon monoxide. In the case of CO, uptake of two molecules of …

small molecule activation010405 organic chemistryaluminiumkompleksiyhdisteetGeneral Medicine010402 general chemistry01 natural sciencescarbon monoxide3. Good health0104 chemical sciencesaktivointiimidealuminylalumiinihiilimonoksidiAngewandte Chemie
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Addition of Ethylene or Hydrogen to a Main-Group Metal Cluster under Mild Conditions

2015

Reaction of the tin cluster Sn8(Arinline image)4 (Arinline image=C6H2-2,6-(C6H3-2,4,6-Me3)2) with excess ethylene or dihydrogen at 25 °C/1 atmosphere yielded two new clusters that incorporated ethylene or hydrogen. The reaction with ethylene yielded Sn4(Arinline image)4(C2H2)5 that contained five ethylene moieties bridging four aryl substituted tin atoms and one tin–tin bond. Reaction with H2 produced a cyclic tin species of formula (Sn(H)Arinline image)4, which could also be synthesized by the reaction of {(Arinline image)Sn(μ-Cl)}2 with DIBAL-H. These reactions represent the first instances of direct reactions of isolable main-group clusters with ethylene or hydrogen under mild conditions…

small molecule activationEthyleneHydrogenInorganic chemistrychemistry.chemical_elementInfrared spectroscopyCatalysisetyleeniklusteritchemistry.chemical_compoundtinPolymer chemistryCluster (physics)ethyleneclustersta116ArylmetalliklusteritGeneral ChemistryGeneral MedicinechemistryMain group elementvetyhydrogenpienmolekyylien aktivointiDensity functional theorytinaTinAngewandte Chemie
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Trapping and Reactivity of a Molecular Aluminium Oxide Ion

2019

Aluminium oxides constitute an important class of inorganic compound that are widely exploited in the chemical industry as catalysts and catalyst supports. Due to the tendency for such systems to aggregate via Al‐O‐Al bridges, the synthesis of well‐defined, soluble, molecular models for these materials is challenging. Here we show that reactions of the potassium aluminyl complex K 2 [( NON )Al] 2 ( NON = 4,5‐bis(2,6‐diiso‐propylanilido)‐2,7‐di‐tert‐butyl‐9,9‐dimethylxanthene) with CO 2 , PhNCO and N 2 O all proceed via a common aluminium oxide intermediate. This highly reactive species can be trapped by coordination of a THF molecule as the anionic oxide complex [( NON )AlO(THF)] ‐ , which …

small molecule activationOxidereduction010402 general chemistry01 natural sciencesHeterolysisCatalysischemistry.chemical_compoundPolymer chemistryMoleculeReactivity (chemistry)alumiiniBond cleavageAluminium oxides010405 organic chemistryaluminiumpelkistysGeneral MedicineGeneral Chemistrykompleksiyhdisteet0104 chemical sciencesHyponitritechemistryoksiditAluminium oxidealuminyloxide
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Synthesis, characterization, and reactivity of heavier group 13 and 14 metallylenes and metalloid clusters : small molecule activation and more

2015

small molecule activationkemiallinen synteesipienmolekyylitsynthesispuolimetallitmolekyylitmain group chemistrylaskennallinen kemiacomputational chemistrykemialliset sidoksetmetalloid clustersmetallylenesnanohiukkasetröntgenkristallografiaX-ray crystallography
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Low‐Valent Germanylidene Anions: Efficient Single‐Site Nucleophiles for Activation of Small Molecules

2021

Abstract Rare mononuclear and helical chain low‐valent germanylidene anions supported by cyclic (alkyl)(amino)carbene and hypermetallyl ligands were synthesised by stepwise reduction from corresponding germylene precursors via stable and isolable germanium radicals. The electronic structures of the anions can be described with ylidene and ylidone resonance forms with the Ge−C π‐electrons capable of binding even weak electrophiles. The germanylidene anions reacted with CO2 to give μ‐CO2‐κC:κO complexes, a rare coordination mode for low‐valent germanium and inaccessible for the related neutral germylones. These results implicate low‐valent germanylidene anions as efficient single‐site nucleop…

small molecule activationkemialliset yhdisteetdonor-acceptor systemsRadical010402 general chemistry01 natural sciencesMedicinal chemistryCatalysischemistry.chemical_compoundsub-valent compoundsNucleophilemain group elementsAlkylchemistry.chemical_classificationkemialliset reaktiot010405 organic chemistryChemistryCommunicationOrganic ChemistrymolekyylitGeneral ChemistryResonance (chemistry)Small moleculeCommunications0104 chemical sciences3. Good healthgermaniumaktivointiMain group elementElectrophileCarbenevalenssi (kemia)Chemistry – A European Journal
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