Highly accurate electron-propagator and coupled-cluster methods are employed to predict the vertical electron attachment energies (VEAEs) of NH(HO) ( = 1-4) cationic clusters. The VEAEs decrease with increasing and the corresponding Dyson orbitals are diffused over peripheral, non-hydrogen bonded protons. Clusters formed from NH double Rydberg anions (DRAs) and stabilized by hydrogen bonding or electrostatic interactions are studied through calculations on NH(HO) complexes and are compared with more stable H(NH)(HO) isomers. Structures that have cationic and anionic congeners have notable changes in geometry. For all values of , the hydride-molecule complex H(NH)(HO) is always the most stable, with large vertical electron detachment energies (VEDEs). NH(HO) DRA isomers are predicted to have VEDEs that correspond to energetically well-separated peaks in an anion photoelectron spectrum. Less stable DRA isomers display proton donation from the tetrahedral NH fragment to water molecules and VEDEs close to those of previously discovered DRAs. The most stable DRA isomers feature tetrahedral NH fragments without H bridges to water molecules and VEDEs that increase with . Dyson orbitals of NH(HO) DRAs occupy regions beyond the exterior non-bridging O-H and N-H bonds. Thus, the Rydberg electrons in the uncharged Rydberg radicals and DRAs are held near the outer protons of the water and ammonia molecules. Several bound low-lying excited states of the doublet Rydberg radicals have single electrons occupying delocalized Dyson orbitals of s-like, p-like, d-like, or f-like nodal patterns with the following Aufbau principle: 1s, 1p, 1d, 2s, 2p, 1f.
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http://dx.doi.org/10.1039/d2cp02570a | DOI Listing |
J Phys Chem Lett
November 2024
Department of Chemistry, Department of Physics & Astronomy, and Materials Science & Engineering Program, University of California-Riverside, Riverside, California 92521, United States.
Since its appearance in [Cheng, X.; Zhang, Y.; Jónsson, E.
View Article and Find Full Text PDFPhys Chem Chem Phys
November 2024
Science Faculty, University of Iceland, Dunhagi 3, 107 Reykjavík, Iceland.
Methyl radicals in their ground state (CH(X)) were created and excited by two- and one- color excitation schemes for CHBr and CHI, respectively, to record (2+1) REMPI spectra of CH for resonant transitions to the Rydberg states CH**(pA); = 3, 4. Various new and previously observed vibrational bands were identified and analyzed to gain energetic information for the Rydberg states. Particular emphasis was placed on analysis of the rotational structured spectra centered at 70 648 and 60 700 cm, due to transitions from to and for both Rydberg states, respectively.
View Article and Find Full Text PDFPhys Chem Chem Phys
October 2024
Department of Chemistry, University of California at Riverside, Riverside, CA 92521, USA.
The ultraviolet (UV) photodissociation dynamics of the 2-buten-2-yl (CH) radical were studied using the high- Rydberg atom time-of-flight (HRTOF) technique in the photolysis region of 226-246 nm. 2-Buten-2-yl radicals were generated by 193 nm photodissociation of the precursor 2-chloro-2-butene. The H-atom photofragment yield (PFY) spectrum of 2-buten-2-yl is broad, peaking at 234 nm.
View Article and Find Full Text PDFJ Phys Chem A
July 2024
Department of Chemistry, University of California at Riverside, Riverside, California 92521, United States.
The ultraviolet (UV) photodissociation dynamics of the 1-methylallyl (1-MA) radical were studied using the high- Rydberg atom time-of-flight (HRTOF) technique in the wavelength region of 226-244 nm. The 1-MA radicals were produced by 193 nm photodissociation of the 3-chloro-1-butene and 1-chloro-2-butene precursor. The 1 + 1 REMPI spectrum of 1-MA agrees with the previous UV absorption spectrum in this wavelength region.
View Article and Find Full Text PDFJ Chem Phys
May 2024
Sandia National Laboratories, Livermore, California 94551, USA.
A femtosecond laser induced photofragmentation fluorescence (fs-LIPF) scheme for the sensitive detection and imaging of water vapor is presented. Two photons of 244.3 nm excite water to the D̃ state and produce hydroxyl radicals in the fluorescing à state.
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