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N-tert-Butylpivalamide, a chemical compound with the molecular formula C8H17NO, is a white solid with a characteristic pungent odor. It is commonly used as a reagent in organic synthesis due to its ability to function as a ligand or a building block for the creation of complex organic molecules. Additionally, it serves as a precursor in the production of various pharmaceuticals and agrochemicals. However, it is important to handle N-tert-Butylpivalamide with caution as it is flammable and may cause skin and eye irritation upon contact. Overall, N-tert-Butylpivalamide plays an important role in the field of organic chemistry and has multiple industrial applications.

686-96-4

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686-96-4 Usage

Uses

Used in Organic Synthesis:
N-tert-Butylpivalamide is used as a reagent in organic synthesis for its ability to function as a ligand or a building block, enabling the creation of complex organic molecules.
Used in Pharmaceutical Production:
N-tert-Butylpivalamide is used as a precursor in the production of various pharmaceuticals, contributing to the development of new medications.
Used in Agrochemical Production:
N-tert-Butylpivalamide is also used as a precursor in the production of agrochemicals, playing a role in the development of agricultural products.
Used in Research and Development:
Due to its versatility in organic synthesis, N-tert-Butylpivalamide is utilized in research and development for exploring new chemical reactions and synthesizing novel compounds.

Check Digit Verification of cas no

The CAS Registry Mumber 686-96-4 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 6,8 and 6 respectively; the second part has 2 digits, 9 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 686-96:
(5*6)+(4*8)+(3*6)+(2*9)+(1*6)=104
104 % 10 = 4
So 686-96-4 is a valid CAS Registry Number.
InChI:InChI=1/C9H19NO/c1-8(2,3)7(11)10-9(4,5)6/h1-6H3,(H,10,11)

686-96-4Relevant academic research and scientific papers

Synthesis of Secondary Amides from Thiocarbamates

Mampuys, Pieter,Ruijter, Eelco,Orru, Romano V. A.,Maes, Bert U. W.

supporting information, p. 4235 - 4239 (2018/07/29)

The synthesis of secondary amides from readily accessible and bench-stable substituted S-phenyl thiocarbamates and Grignard reactants is reported. Oxidative workup allows recycling of the thiolate leaving group as diphenyl disulfide. Diphenyl disulfide can be transformed into S-phenyl benzenethiosulfonate, a reactant required for thiocarbamate synthesis. This amide synthesis is suitable for the preparation of challenging amides that are not or hardly accessible via classical approaches.

Ester Aminolysis: New Reaction Series for the Quantitative Measurement of Steric Effects

DeTar, DeLos F.,Delahunty, Claire

, p. 2734 - 2739 (2007/10/02)

Further development of theoretical methods for computing steric effects on chemical reactivity requires a large body of new reliable quantitative data for calibration and for testing.We report here on design criteria for reaction series suitable for obtaining these data and on a successful implementation that shows promise of providing access to a particularly broad range of steric hindrance and which additionally has shown a new form of steric hindrance.The series examined in the present study is ester aminolysis in the form RCOOC6H4NO2-p + R'NH2 in acetonitrile solution.A primary purpose of the examination has been to ascertain whether aminolysis may be a useful general series or whether known or unexpected complications might render it unsuitable.We have measured rate constants for a matrix of reactions using five different R groups and four different R' groups, each reaction at a series of concentrations of amine.This is the first systematic study of the sumultaneous action of steric hindrance effects in both the acylating agent and the entering nucleophile.The reactions showed both a second-order term k2 and a relatively less important third-order term k32.The Taft equation was applied to subsets of the rate constants.For each amine there were data for a set of esters for which the R group was the variable.The slopes ρs for these sets were nearly unity.For each ester there were corresponding data for a series of amine reactions in which R' was the variable.These sets also gave good correlations, but the slopes ρs' were considerably larger, about 2.3.This unusually large difference in response to structural effects in the acylating agent and in the nucleophile is unexpected and appears to arise from a new type of steric hindrance.An obvious explanation based on bond lengths proves to be quantitatively insufficient; that explanation postulates that there is greater hindrance for the amine because the C-N bond is short in comparison with the C-C bond.The difference may be due instead to a requirement for special orientation within the transition state, a matter currently under theoretical investigation.The k2 and the k3 sets gave similar correlations, an important finding in at least two respects.It means that steric effects are well-defined in this example of ester aminolysis, and it means also that the extra molecule of amine is far enough from the reaction center so that no additional steric hindrance results.The reactions observed in the present study cover a range of 5 powers of 10 in relative rate constants.Preliminary studies with other examples of aminolysis suggest that a range of relative rate constants covering well in excess of 12 powers of 10 should be observable.

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