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Vibrational spectroscopy and dissociation dynamics of cyclohexyl hydroperoxide.
Roy, Tarun Kumar; Qian, Yujie; Karlsson, Elizabeth; Rabayah, Rawan; Sojdak, Christopher A; Kozlowski, Marisa C; Karsili, Tolga N V; Lester, Marsha I.
Afiliación
  • Roy TK; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
  • Qian Y; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
  • Karlsson E; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
  • Rabayah R; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
  • Sojdak CA; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
  • Kozlowski MC; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
  • Karsili TNV; Department of Chemistry, University of Louisiana Lafayette LA USA.
  • Lester MI; Department of Chemistry, University of Pennsylvania Philadelphia PA 19104-6323 USA milester@sas.upenn.edu.
Chem Sci ; 15(16): 6160-6167, 2024 Apr 24.
Article en En | MEDLINE | ID: mdl-38665513
ABSTRACT
Organic hydroperoxides (ROOH) are ubiquitous in the atmospheric oxidation of volatile organic compounds (VOCs) as well as in low-temperature oxidation of hydrocarbon fuels. The present work focuses on a prototypical cyclic hydroperoxide, cyclohexyl hydroperoxide (CHHP). The overtone OH stretch (2νOH) spectrum of jet-cooled CHHP is recorded by IR multiphoton excitation with UV laser-induced fluorescence detection of the resulting OH products. A distinctive IR feature is observed at 7012.5 cm-1. Two conformers of CHHP are predicted to have similar stabilities (within 0.2 kcal mol-1) and overtone OH stretch transitions (2νOH), yet are separated by a significant interconversion barrier. The IR power dependence indicates that absorption of three or more IR photons is required for dissociation of CHHP to cyclohexoxy (RO) and OH radical products. Accompanying high-level single- and multi-reference electronic structure calculations quantitatively support the experimental results. Calculations are extended to a range of organic hydroperoxides to examine trends in bond dissociation energies associated with RO + OH formation and compared with prior theoretical results.

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Chem Sci Año: 2024 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Chem Sci Año: 2024 Tipo del documento: Article