scispace - formally typeset
P

Pablo J. Quintana

Researcher at University of Oviedo

Publications -  23
Citations -  167

Pablo J. Quintana is an academic researcher from University of Oviedo. The author has contributed to research in topics: Flyback converter & LED lamp. The author has an hindex of 8, co-authored 22 publications receiving 157 citations. Previous affiliations of Pablo J. Quintana include Complutense University of Madrid & Radboud University Nijmegen.

Papers
More filters
Journal ArticleDOI

Low-Temperature Rotational Relaxation of N2 Studied with Resonance-Enhanced Multiphoton Ionization

TL;DR: In this article, the authors used the FPI program of the MEC under DGICYT Project PB95/0918-C03 to evaluate the performance of a Spanish teacher's training program.
Journal ArticleDOI

Bidirectional Grid-Tie Flyback Converter Applied to Distributed Power Generation and Street Lighting Integrated System

TL;DR: In this paper, a multifunctional bidirectional converter applied to street lighting and photovoltaic (PV) microgeneration systems is presented, which works as an electronic driver supplying a street lighting luminaire based on light emitting diodes (LEDs) at night, from ac single-phase mains with high power factor and reduced harmonic distortion.
Journal ArticleDOI

Photodissociation of dimethyl sulfide at 227.5 nm: resonance-enhanced multiphoton ionization of the methyl fragment

TL;DR: In this paper, the photodissociation of CH3-S-CH3 following the lowest dipole-allowed transition 11B1(9a1←3b1)←X1A1 has been studied.
Journal ArticleDOI

The photodissociation of CH3SCH3 and CD3SCD3 at 220–231 nm investigated by velocity map ion imaging

TL;DR: In this paper, the photodissociation of the two isotopomers of dimethyl sulfide, CH3SCH3 and CD3SCD3, through the first electronic absorption band at wavelengths 220-231 nm has been studied employing velocity map ion imaging to detect the methyl products.
Journal ArticleDOI

Velocity map imaging and REMPI study of the photodissociation of CH3SCH3 from the first absorption band

TL;DR: In this paper, the photodissociation of dimethyl sulfide (CH 3 SCH 3 ) at 229nm has been studied employing a combination of velocity map imaging and time-of-flight resonanceenhanced multiphoton ionization techniques to detect the CH 3 products.