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Featured researches published by R. F. da Costa.


Journal of Chemical Physics | 2014

An experimental and theoretical investigation into the excited electronic states of phenol

D. B. Jones; G. B. da Silva; R. F. C. Neves; H. V. Duque; Luca Chiari; E. M. de Oliveira; M. C. A. Lopes; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; Marco A. P. Lima; M. J. Brunger

We present experimental electron-energy loss spectra (EELS) that were measured at impact energies of 20 and 30 eV and at angles of 90° and 10°, respectively, with energy resolution ∼70 meV. EELS for 250 eV incident electron energy over a range of angles between 3° and 50° have also been measured at a moderate energy resolution (∼0.9 eV). The latter spectra were used to derive differential cross sections and generalised oscillator strengths (GOS) for the dipole-allowed electronic transitions, through normalization to data for elastic electron scattering from benzene. Theoretical calculations were performed using time-dependent density functional theory and single-excitation configuration interaction methods. These calculations were used to assign the experimentally measured spectra. Calculated optical oscillator strengths were also compared to those derived from the GOS data. This provides the first investigation of all singlet and triplet excited electronic states of phenol up to the first ionization potential.


Journal of Chemical Physics | 2015

Differential cross sections for electron impact excitation of the electronic bands of phenol

R. F. C. Neves; D. B. Jones; M. C. A. Lopes; K. L. Nixon; G. B. da Silva; H. V. Duque; E. M. de Oliveira; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; Marco A. P. Lima; Kuru Ratnavelu; G. García; M. J. Brunger

We report results from a joint theoretical and experimental investigation into electron scattering from the important organic species phenol (C6H5OH). Specifically, differential cross sections (DCSs) have been measured and calculated for the electron-impact excitation of the electronic states of C6H5OH. The measurements were carried out at energies in the range 15-40 eV, and for scattered-electron angles between 10° and 90°. The energy resolution of those experiments was typically ∼80 meV. Corresponding Schwinger multichannel method with pseudo-potentials calculations, with and without Born-closure, were also performed for a sub-set of the excited electronic-states that were accessed in the measurements. Those calculations were conducted at the static exchange plus polarisation (SEP)-level using a minimum orbital basis for single configuration interaction (MOBSCI) approach. Agreement between the measured and calculated DCSs was typically fair, although to obtain quantitative accord, the theory would need to incorporate even more channels into the MOBSCI.


Journal of Chemical Physics | 2016

Integral elastic, electronic-state, ionization, and total cross sections for electron scattering with furfural

D. B. Jones; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; Marco A. P. Lima; F.J. Blanco; G. García; M. J. Brunger

We report absolute experimental integral cross sections (ICSs) for electron impact excitation of bands of electronic-states in furfural, for incident electron energies in the range 20-250 eV. Wherever possible, those results are compared to corresponding excitation cross sections in the structurally similar species furan, as previously reported by da Costa et al. [Phys. Rev. A 85, 062706 (2012)] and Regeta and Allan [Phys. Rev. A 91, 012707 (2015)]. Generally, very good agreement is found. In addition, ICSs calculated with our independent atom model (IAM) with screening corrected additivity rule (SCAR) formalism, extended to account for interference (I) terms that arise due to the multi-centre nature of the scattering problem, are also reported. The sum of those ICSs gives the IAM-SCAR+I total cross section for electron-furfural scattering. Where possible, those calculated IAM-SCAR+I ICS results are compared against corresponding results from the present measurements with an acceptable level of accord being obtained. Similarly, but only for the band I and band II excited electronic states, we also present results from our Schwinger multichannel method with pseudopotentials calculations. Those results are found to be in good qualitative accord with the present experimental ICSs. Finally, with a view to assembling a complete cross section data base for furfural, some binary-encounter-Bethe-level total ionization cross sections for this collision system are presented.


Journal of Chemical Physics | 2015

Electronic excitation of furfural as probed by high-resolution vacuum ultraviolet spectroscopy, electron energy loss spectroscopy, and ab initio calculations

F. Ferreira da Silva; E. Lange; P. Limão-Vieira; Nykola C. Jones; Søren V. Hoffmann; M.-J. Hubin-Franskin; J. Delwiche; M. J. Brunger; R. F. C. Neves; M. C. A. Lopes; E. M. de Oliveira; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; F.J. Blanco; G. García; Marco A. P. Lima; D. B. Jones

The electronic spectroscopy of isolated furfural (2-furaldehyde) in the gas phase has been investigated using high-resolution photoabsorption spectroscopy in the 3.5-10.8 eV energy-range, with absolute cross section measurements derived. Electron energy loss spectra are also measured over a range of kinematical conditions. Those energy loss spectra are used to derive differential cross sections and in turn generalised oscillator strengths. These experiments are supported by ab initio calculations in order to assign the excited states of the neutral molecule. The good agreement between the theoretical results and the measurements allows us to provide the first quantitative assignment of the electronic state spectroscopy of furfural over an extended energy range.


Journal of Chemical Physics | 2015

Intermediate energy electron impact excitation of composite vibrational modes in phenol

R. F. C. Neves; D. B. Jones; M. C. A. Lopes; K. L. Nixon; E. M. de Oliveira; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; Marco A. P. Lima; G. B. da Silva; M. J. Brunger

We report differential cross section results from an experimental investigation into the electron impact excitation of a number of the low-lying composite (unresolved) vibrational modes in phenol (C6H5OH). The measurements were carried out at incident electron energies in the range 15-40 eV and for scattered-electron angles in the range 10-90°. The energy resolution of those measurements was typically ∼80 meV. Calculations, using the GAMESS code, were also undertaken with a B3LYP/aug-cc-pVDZ level model chemistry, in order to enable us to assign vibrational modes to the features observed in our energy loss spectra. To the best of our knowledge, the present cross sections are the first to be reported for vibrational excitation of the C6H5OH molecule by electron impact.


Journal of Chemical Physics | 2015

Excitation of vibrational quanta in furfural by intermediate-energy electrons

D. B. Jones; R. F. C. Neves; M. C. A. Lopes; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; Marco A. P. Lima; G. García; F.J. Blanco; M. J. Brunger

We report cross sections for electron-impact excitation of vibrational quanta in furfural, at intermediate incident electron energies (20, 30, and 40 eV). The present differential cross sections are measured over the scattered electron angular range 10°-90°, with corresponding integral cross sections subsequently being determined. Furfural is a viable plant-derived alternative to petrochemicals, being produced via low-temperature plasma treatment of biomass. Current yields, however, need to be significantly improved, possibly through modelling, with the present cross sections being an important component of such simulations. To the best of our knowledge, there are no other cross sections for vibrational excitation of furfural available in the literature, so the present data are valuable for this important molecule.


Journal of Chemical Physics | 2016

Theoretical and experimental differential cross sections for electron impact excitation of the electronic bands of furfural

D. B. Jones; R.F.C. Neves; M. C. A. Lopes; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; Marco A. P. Lima; Gustavo García; P. Limão-Vieira; M. J. Brunger

We report results from a joint experimental and theoretical investigation into electron scattering from the important industrial species furfural (C5H4O2). Specifically, differential cross sections (DCSs) have been measured and calculated for the electron-impact excitation of the electronic states of C5H4O2. The measurements were carried out at energies in the range 20-40 eV, and for scattered-electron angles between 10° and 90°. The energy resolution of those experiments was typically ∼80 meV. Corresponding Schwinger multichannel method with pseudo-potential calculations, for energies between 6-50 eV and with and without Born-closure, were also performed for a sub-set of the excited electronic-states that were accessed in the measurements. Those calculations were undertaken at the static exchange plus polarisation-level using a minimum orbital basis for single configuration interaction (MOB-SCI) approach. Agreement between the measured and calculated DCSs was qualitatively quite good, although to obtain quantitative accord, the theory would need to incorporate even more channels into the MOB-SCI. The role of multichannel coupling on the computed electronic-state DCSs is also explored in some detail.


Journal of Chemical Physics | 2013

Low-energy electron collisions with thiophene.

R. F. da Costa; M. T. do N. Varella; Marco A. P. Lima; M. H. F. Bettega

We report on elastic integral, momentum transfer, and differential cross sections for collisions of low-energy electrons with thiophene molecules. The scattering calculations presented here used the Schwinger multichannel method and were carried out in the static-exchange and static-exchange plus polarization approximations for energies ranging from 0.5 eV to 6 eV. We found shape resonances related to the formation of two long-lived π∗ anion states. These resonant structures are centered at the energies of 1.00 eV (2.85 eV) and 2.82 eV (5.00 eV) in the static-exchange plus polarization (static-exchange) approximation and belong to the B1 and A2 symmetries of the C2v point group, respectively. Our results also suggest the existence of a σ∗ shape resonance in the B2 symmetry with a strong d-wave character, located at around 2.78 eV (5.50 eV) as obtained in the static-exchange plus polarization (static-exchange) calculation. It is worth to mention that the results obtained at the static-exchange plus polarization level of approximation for the two π∗ resonances are in good agreement with the electron transmission spectroscopy results of 1.15 eV and 2.63 eV measured by Modelli and Burrow [J. Phys. Chem. A 108, 5721 (2004)]. The existence of the σ∗ shape resonance is in agreement with the observations of Dezarnaud-Dandiney et al. [J. Phys. B 31, L497 (1998)] based on the electron transmission spectra of dimethyl(poly)sulphides. A comparison among the resonances of thiophene with those of pyrrole and furan is also performed and, altogether, the resonance spectra obtained for these molecules point out that electron attachment to π∗ molecular orbitals is a general feature displayed by these five-membered heterocyclic compounds.


Journal of Chemical Physics | 2017

An experimental and theoretical investigation into the electronically excited states of para-benzoquinone

D. B. Jones; P. Limão-Vieira; Mónica Mendes; Nykola C. Jones; Søren V. Hoffmann; R. F. da Costa; M. T. do N. Varella; M. H. F. Bettega; F.J. Blanco; G. García; Oddur Ingólfsson; Marco A. P. Lima; M. J. Brunger

We report on a combination of experimental and theoretical investigations into the structure of electronically excited para-benzoquinone (pBQ). Here synchrotron photoabsorption measurements are reported over the 4.0–10.8 eV range. The higher resolution obtained reveals previously unresolved pBQ spectral features. Time-dependent density functional theory calculations are used to interpret the spectrum and resolve discrepancies relating to the interpretation of the Rydberg progressions. Electron-impact energy loss experiments are also reported. These are combined with elastic electron scattering cross section calculations performed within the framework of the independent atom model–screening corrected additivity rule plus interference (IAM-SCAR + I) method to derive differential cross sections for electronic excitation of key spectral bands. A generalized oscillator strength analysis is also performed, with the obtained results demonstrating that a cohesive and reliable quantum chemical structure and cross ...


Journal of Chemical Physics | 2018

Electron-impact electronic-state excitation of para-benzoquinone

D. B. Jones; R. F. da Costa; F. Kossoski; M. T. do N. Varella; M. H. F. Bettega; F. Ferreira da Silva; P. Limão-Vieira; G. García; Marco A. P. Lima; Ronald White; M. J. Brunger

Angle resolved electron energy loss spectra (EELS) for para-benzoquinone (C6H4O2) have been recorded for incident electron energies of 20, 30, and 40 eV. Measured differential cross sections (DCSs) for electronic band features, composed of a combination of energetically unresolved electronic states, are subsequently derived from those EELS. Where possible, the obtained DCSs are compared with those calculated using the Schwinger multichannel method with pseudopotentials. These calculations were performed using a minimum orbital basis single configuration interaction framework at the static exchange plus polarisation level. Here, quite reasonable agreement between the experimental cross sections and the theoretical cross sections for the summation of unresolved states was observed.

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M. H. F. Bettega

Federal University of Paraná

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Marco A. P. Lima

State University of Campinas

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M. C. A. Lopes

Universidade Federal de Juiz de Fora

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M. A. P. Lima

State University of Campinas

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G. García

Spanish National Research Council

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E. M. de Oliveira

State University of Campinas

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P. Limão-Vieira

Universidade Nova de Lisboa

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