Obtuvo la Licenciatura en Física, la Maestría y el Doctorado en Ciencia e Ingeniería de Materiales en la UNAM. Es Profesor Titular C en el Instituto Politécnico Nacional en la ESIME-Culhuacan, donde formó y coordina el Grupo de Investigación en Nanociencias. Pertenece al Sistema Nacional de Investigadores (SNI)-Nivel 3, ha dirigido 16 tesis doctorales, una estancia sabática, una posdoctoral y tres estancias de investigación en el programa de retención del CONACyT, 16 tesis doctorales, 29 tesis de maestría y 11 de licenciatura, tres de las cuales han obtenido el premio a la mejor tesis de maestría y de doctorado en el IPN y un premio a la mejor tesis doctoral por parte de la UNAM. Ha publicado 121 artículos en revistas internacionales indizadas en el Journal Citation Reports con un alto factor de impacto, así como 37 artículos in extenso como memorias de congresos. Sus trabajos de investigación se han presentado en más de 250 congresos nacionales e internacionales de reconocida calidad académica. Se ha desempeñado como revisor en revistas internacionales como Applied Surface Science, Nanoscale, Physica E, Physica B, Physica Status Solidi (b) así como el Journal of Energy Storage por citar algunas. Adicionalmente ha sido Responsable Técnico de proyectos financiados por el CONACyT, el ICyTDF y el IPN, además ha coordinado varios proyectos multidisciplinarios en el IPN. Fue Presidente de la División de Estado Sólido de la Sociedad Mexicana de Física. Pertenece a la Academia Mexicana de Ciencias. En su trayectoria docente en el IPN, participó en la creación de la carrera de Ingeniería en Computación, así como la Maestría en Ciencias de Ingeniería en Sistemas Energéticoas y fue Coordinador del Doctorado en Comunicaciones y Electrónica a este último se le otorgó la categoría de programa de Competencia Internacional como resultad ode la evaluación en el Programa Nacional de Posgrados de Calidad (PNPC) del CONACyT. Una de sus líneas de investigación son las propiedades electrónicas, ópticas y vibracionales de semiconductores nanoestructurados con aplicaciones en comunicaciones y electrónica, así como en el almacenamiento y conversión de energía.
Marcos-Viquez, Alma L.; Miranda, Álvaro; Cruz-Irisson, Miguel; Pérez, Luis A.
Gas adsorption enhancement on transition-metal-decorated tin carbide monolayers Artículo de revista
En: Materials Letters, vol. 298, pp. 130030, 2021, ISSN: 0167-577X.
Resumen | Enlaces | BibTeX | Etiquetas: Electronic materials, Gas sensors, Tin carbide monolayers, Transition metal adatoms
@article{MARCOSVIQUEZ2021130030,
title = {Gas adsorption enhancement on transition-metal-decorated tin carbide monolayers},
author = {Alma L. Marcos-Viquez and \'{A}lvaro Miranda and Miguel Cruz-Irisson and Luis A. P\'{e}rez},
url = {https://www.sciencedirect.com/science/article/pii/S0167577X21007266},
doi = {https://doi.org/10.1016/j.matlet.2021.130030},
issn = {0167-577X},
year = {2021},
date = {2021-01-01},
journal = {Materials Letters},
volume = {298},
pages = {130030},
abstract = {The interaction between diatomic gas molecules O2, N2 and NO with tin carbide monolayers (2DSnC) decorated with transition-metal (TM) atoms (Au, Ag and Cu) was investigated by using density functional calculations. The results indicate that the addition of TM atoms to 2DSnC considerably improves the molecule adsorption energy. The most stable molecule adsorption configurations and energies, together with the electronic properties of the molecule-TM-2DSnC complexes, were also obtained. The Cu adatom has the largest molecule adsorption-energy enhancement followed, in decreasing order, by Au and Ag. In general, NO is strongly bound to TM-2DSnC, followed by O2. Moreover, when O2 interacts with the Au adatom, it is spontaneously dissociated. N2 is, in comparison with the other studied molecules, less strongly adsorbed to TM-decorated 2DSnC. The results indicate that Cu- and Ag-2DSnC could be used as NO traps.},
keywords = {Electronic materials, Gas sensors, Tin carbide monolayers, Transition metal adatoms},
pubstate = {published},
tppubtype = {article}
}
Marcos-Viquez, Alma L.; Miranda, Álvaro; Cruz-Irisson, Miguel; Pérez, Luis A.
Tin carbide monolayers as potential gas sensors Artículo de revista
En: Materials Letters, vol. 294, pp. 129751, 2021, ISSN: 0167-577X.
Resumen | Enlaces | BibTeX | Etiquetas: Electronic materials, Gas sensors, Nanocrystalline materials, NO dissociation, Tin carbide monolayers
@article{MARCOSVIQUEZ2021129751,
title = {Tin carbide monolayers as potential gas sensors},
author = {Alma L. Marcos-Viquez and \'{A}lvaro Miranda and Miguel Cruz-Irisson and Luis A. P\'{e}rez},
url = {https://www.sciencedirect.com/science/article/pii/S0167577X2100447X},
doi = {https://doi.org/10.1016/j.matlet.2021.129751},
issn = {0167-577X},
year = {2021},
date = {2021-01-01},
journal = {Materials Letters},
volume = {294},
pages = {129751},
abstract = {We theoretically address the capability of tin carbide (SnC) nanosheets, with honeycomb lattice structure, as molecular sensors or scavengers of NO, NO2 and SO2 toxic gas molecules, by using density functional calculations. The results show that NO, NO2 and SO2 molecules are chemisorbed on the SnC monolayers (2DSnC) with adsorption energies larger than 1 eV, where the stable configurations correspond to those where the N or S atoms are bonded to the C atom of the nanosheet. Moreover, NO2 can also be dissociated into NO and O on the 2DSnC, with an energy gain of 2.7 eV. Finally, the electronic properties of the formed complexes are discussed. In particular, the values of their band gaps could, in principle, allow the discrimination between sulphur and nitric oxides.},
keywords = {Electronic materials, Gas sensors, Nanocrystalline materials, NO dissociation, Tin carbide monolayers},
pubstate = {published},
tppubtype = {article}
}
Marcos-Viquez, Alma L.; Miranda, Álvaro; Cruz-Irisson, Miguel; Pérez, Luis A.
Molecular oxygen dissociation on tin carbide monolayers with gold adatoms Artículo de revista
En: Materials Letters, vol. 293, pp. 129675, 2021, ISSN: 0167-577X.
Resumen | Enlaces | BibTeX | Etiquetas: Electronic materials, Oxygen dissociation, Single-atom catalysis, Tin carbide monolayers
@article{MARCOSVIQUEZ2021129675,
title = {Molecular oxygen dissociation on tin carbide monolayers with gold adatoms},
author = {Alma L. Marcos-Viquez and \'{A}lvaro Miranda and Miguel Cruz-Irisson and Luis A. P\'{e}rez},
url = {https://www.sciencedirect.com/science/article/pii/S0167577X21003712},
doi = {https://doi.org/10.1016/j.matlet.2021.129675},
issn = {0167-577X},
year = {2021},
date = {2021-01-01},
journal = {Materials Letters},
volume = {293},
pages = {129675},
abstract = {In this work, the interactions between oxygen molecule O2 with pristine and gold-decorated tin carbide (SnC) monolayers were investigated by using density functional calculations. The results indicate that O2 is adsorbed, with an energy of 0.95 eV, on the pristine SnC nanosheet in a bond-like configuration with each oxygen close to a carbon and a tin atom, respectively. There is a large electronic charge transfer from the SnC monolayer to the O2 molecule, which enlarges the molecule internal bond, indicating an activation towards a peroxo-like state. Also, a gold adatom can strongly bind to the SnC monolayer over a C atom. Furthermore, when O2 interacts with this Au adatom, it is spontaneously dissociated with an energy gain of 1.84 eV and where the final adsorption configuration consists of each oxygen on the top of different tin atoms but sharing the gold one.},
keywords = {Electronic materials, Oxygen dissociation, Single-atom catalysis, Tin carbide monolayers},
pubstate = {published},
tppubtype = {article}
}
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