The rotationally resolved electronic spectra of the origin bands of 3-cyanoindole, 3-cyanoindole(d1), and the 3-cyanoindole-(H2O)1 cluster have been measured and analyzed using evolutionary algorithms. For the monomer, permanent dipole moments of 5.90 D for the ground state, and of 5.35 D for the lowest excited singlet state have been obtained from electronic Stark spectroscopy. The orientation of the transition dipole moment is that of an 1Lb state for the monomer. The water moiety in the water cluster could be determined to be trans-linearly bound to the NH group of 3-cyanoindole, with an NHO hydrogen bond length of 201.9 pm in the electronic ground state. Like the 3-cyanoindole monomer, the 3-cyanoindole-water cluster also shows an 1Lb-like excited singlet state. The excited state lifetime of isolate 3-cyanoindole in the gas phase has been determined to be 9.8 ns, and that of 3-cyanoindole(d1) has been found to be 14.8 ns, while that of the 1 : 1 water cluster is considerably shorter (3.6 ns). The excited state lifetime of 3-cyanoindole(d1) in D2O solution has been found to be smaller than 20 ps.
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http://dx.doi.org/10.1039/c8cp04020f | DOI Listing |
J Phys Chem Lett
December 2024
Department of Physics and State Key Laboratory of Low-Dimensional Quantum Physics, Tsinghua University, Beijing 100084, China.
In this study, we conducted precise measurements to determine the bond dissociation energy of F, yielding a value of 12939.95 ± 0.40 cm or 154.
View Article and Find Full Text PDFPhys Chem Chem Phys
December 2024
Instituto de Estructura de la Materia (IEM-CSIC), Serrano 123, 28006 Madrid, Spain.
A detailed analysis of the low collision energy (0.03-10 meV) integral reaction cross-section has been carried out for the F + HD ( = 0, 1; = 1)→ HF(DF) + D(H) reaction using accurate, fully converged time-independent hyperspherical quantum dynamics. Particular attention has been paid to the shape (orbiting) resonances and their assignment to the orbital () and total () angular momenta as well as to the product's state resolved cross-sections at the energies of the resonances.
View Article and Find Full Text PDFActa Sci Neurol
July 2024
Department of Psychiatry, Case Western Reserve University, School of Medicine, Cleveland, USA.
Unlabelled: This case study demonstrates that craniocervical spinal alignment with the EPIC technique spinal procedure appears to have a potential positive impact on ocular function. This paper will report the case of a patient with cranial nerve VI palsy and dizziness, and the clinical improvements following treatment with the soundwave technology of the EPIC technique spinal procedure [1].
Objective: To report the case of a patient with cranial nerve VI (CN VI) palsy and the clinical changes that occurred after receiving treatment using the EPIC (Evolutionary Percussion Instrument Corrections) technique spinal procedure.
J Chem Phys
November 2024
CNRS, De la Molécule aux Nano-Objets: Réactivité, Interactions et Spectroscopies, MONARIS, Sorbonne Université, 75005 Paris, France.
This study investigates the translational and rovibrational energy of vacuum-ultraviolet (VUV) photodesorbed CO molecules from a CO polycrystalline ice (15 K) at ∼8 eV. The electronic excitation was produced by a pulsed VUV laser, and the photodesorption of CO molecules in their ground and first vibrational states was observed using resonance enhanced multiphoton ionization. Time-of-flight and rotationally resolved spectra were measured, and the kinetic and internal energy distribution were obtained.
View Article and Find Full Text PDFPhys Chem Chem Phys
November 2024
MSME, Université Gustave Eiffel, CNRS UMR 8208, Univ Paris Est Creteil, F-77474 Marne-la-Vallée, France.
The photodissociation of molecules is becoming an increasingly important factor to consider in the evolution of exoplanets' atmospheres orbiting around UV-rich stars, as it leads to the enrichment of atmospheric complexity. A new method is developed for computing the rotationally and vibrationally resolved photodissociation spectrum of triatomic molecules. The time-independent Schrödinger equation is solved using the variational nuclear motion program EVEREST; a new code EXOCSMOOTH is employed to compute the cross-sections by applying Gaussian smoothing to a set of discrete transitions into the continuum.
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