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Pizzano E, Baroncelli F, Melandri S, Evangelisti L, Ricci M, Mazzacurati M, Pori M, Torreggiani A, Maris A. Vibrational Features of Oxyamines: A Comparative Study of N,N-Diethylhydroxylamine and N,N-Diethylacetyloxyamine. Chemphyschem 2024; 25:e202400222. [PMID: 38963901 DOI: 10.1002/cphc.202400222] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/29/2024] [Revised: 04/10/2024] [Accepted: 07/03/2024] [Indexed: 07/06/2024]
Abstract
The ability of oxyamines to undergo homolytic cleavage of the O-C bond, leading to the formation of stable radicals, is widely used in polymerization processes and to prevent oxidative stress in materials. We present a mid and near-infrared spectroscopy study on two model compounds, N,N-diethylhydroxyloxyamine (C4H11NO) and its acetyl derivative N,N-diethylacetyloxyamine (C6H13NO2) in the liquid phase. The analysis of the spectra is based on a complete exploration of the conformational space, coupled to harmonic and anharmonic calculations performed using the generalized second-order vibrational perturbation theory (GVPT2) formalism at the B3LYP-D3(BJ)/Def2-TZVP level of calculation and potential energy distribution analysis. In the most stable species out of 25, the three amine chains present an all-anti arrangement, with the carbonyl oxygen atom pointing towards the nitrogen lone pair. The simulated spectra are in overall good agreement with the experimental ones, and suitable for the assignment of the main observed bands. Furthermore, similarities and divergences between the two molecules are discussed.
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Affiliation(s)
- Emanuele Pizzano
- Department of Chemistry G. Ciamician, University of Bologna, Bologna, Italy
- BASF Italia S.p.A., Pontecchio Marconi, BO, Italy
| | - Filippo Baroncelli
- Department of Chemistry G. Ciamician, University of Bologna, Bologna, Italy
| | - Sonia Melandri
- Department of Chemistry G. Ciamician, University of Bologna, Bologna, Italy
- Interdepartmental Centre for Industrial Aerospace Research (CIRI Aerospace), University of Bologna, Forlì, Italy
- Interdepartmental Centre for Industrial Agrifood Research (CIRI Agrifood), University of Bologna, Cesena, Italy
| | - Luca Evangelisti
- Interdepartmental Centre for Industrial Aerospace Research (CIRI Aerospace), University of Bologna, Forlì, Italy
- Interdepartmental Centre for Industrial Agrifood Research (CIRI Agrifood), University of Bologna, Cesena, Italy
- Department of Chemistry G. Ciamician - Campus of Ravenna, University of Bologna, Ravenna, Italy
| | | | | | - Matteo Pori
- BASF Italia S.p.A., Pontecchio Marconi, BO, Italy
| | | | - Assimo Maris
- Department of Chemistry G. Ciamician, University of Bologna, Bologna, Italy
- Interdepartmental Centre for Industrial Aerospace Research (CIRI Aerospace), University of Bologna, Forlì, Italy
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Salvitti G, Baroncelli F, Nicotri C, Evangelisti L, Melandri S, Maris A. How Water Interacts with the NOH Group: The Rotational Spectrum of the 1:1 N,N-diethylhydroxylamine·Water Complex. MOLECULES (BASEL, SWITZERLAND) 2022; 27:molecules27238190. [PMID: 36500289 PMCID: PMC9737918 DOI: 10.3390/molecules27238190] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 10/29/2022] [Revised: 11/20/2022] [Accepted: 11/22/2022] [Indexed: 11/27/2022]
Abstract
The rotational spectrum of the 1:1 N,N-diethylhydroxylamine-water complex has been investigated using pulsed jet Fourier transform microwave spectroscopy in the 6.5-18.5 GHz frequency region. The most stable conformer has been detected as well as the 13C monosubstituted isotopologues in natural abundance and the 18O enriched water species, allowing to determine the nitrogen nuclear quadrupole coupling constants and the molecular structure in the vibrational ground state. The molecule has a Cs symmetry and the water lies in the bc symmetry plane forming two hydrogen bonds with the NOH frame with length: dHOH·NOH = 1.974 Å and dH2O·HON = 2.096 Å. From symmetry-adapted perturbation theory calculations coupled to atoms in molecule approach, the corresponding interaction energy values are estimated to be 24 and 13 kJ·mol-1, respectively. The great strength of the intermolecular interaction involving the nitrogen atom is in agreement with the high reactivity of hydroxylamine compounds at the nitrogen site.
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Affiliation(s)
- Giovanna Salvitti
- Department of Chemistry “G. Ciamician”, University of Bologna, 40126 Bologna, Italy
| | - Filippo Baroncelli
- Department of Chemistry “G. Ciamician”, University of Bologna, 40126 Bologna, Italy
| | - Chiara Nicotri
- Department of Chemistry “G. Ciamician”, University of Bologna, 40126 Bologna, Italy
| | - Luca Evangelisti
- Department of Chemistry “G. Ciamician”, Campus of Ravenna, University of Bologna, 48123 Ravenna, Italy
- Interdepartmental Centre for Industrial Aerospace Research (CIRI Aerospace), University of Bologna, 47121 Forlì, Italy
- Interdepartmental Centre for Industrial Agrifood Research (CIRI Agrifood), University of Bologna, 47521 Cesena, Italy
| | - Sonia Melandri
- Department of Chemistry “G. Ciamician”, University of Bologna, 40126 Bologna, Italy
- Interdepartmental Centre for Industrial Aerospace Research (CIRI Aerospace), University of Bologna, 47121 Forlì, Italy
- Interdepartmental Centre for Industrial Agrifood Research (CIRI Agrifood), University of Bologna, 47521 Cesena, Italy
| | - Assimo Maris
- Department of Chemistry “G. Ciamician”, University of Bologna, 40126 Bologna, Italy
- Interdepartmental Centre for Industrial Aerospace Research (CIRI Aerospace), University of Bologna, 47121 Forlì, Italy
- Correspondence: ; Tel.: +39-051-2099502
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