Coloquio del Instituto de Física

El Coloquio del Instituto de Física se lleva acabo unicamente en vivo en nuestro canal de YouTube

Liga YouTube

https://www.youtube.com/channel/UCijcZAcDo1Ih5u9e8kiFP3g

Contacto e información: Ing. Cristina Cázares Grageda 

 


 Programación del Semestre Agosto - Diciembre 2022

 

Fecha Ponente Procedencia Tema
1 de febrero      
8 de febrero      
15 de febrero      
22 de febrero

Dr. Luis Orozco

Universidad de Maryland

Enfriamiento por luz de nanofibras ópticas.
1 de marzo Roberto de J. León Montiel  Universidad Nacional Autónoma de México 

Imagenología cuántica de alta resolución asistida por inteligencia artificial.

8 de marzo      
15 de marzo      
22 de marzo Jan Dhont 

Forschungszentrum Jülich GmbH & Lund University 

Electric-field induced phase transitions of highly charged rod-likecolloids.
29 de marzo      
19 de abril

David Wong Campos 

Harvard University 

Imagenología y optogenética de voltaje revela mecanismos de computación neuronal _in vivo_

26 de abril

Baron Chanda

Washington University School of Medicine 

Probing Allostery in ion channels at single molecule resolution.

3 de mayo Jonathan K. Whitmer  University of Notre Dame  Modeling Ionic Liquid Crystals for Ion Transport.
17 de mayo      
24 de mayo Luis Fernando Elizondo Aguilera  Instituto de física / BUAP  Comportamiento estructural y dinámico de un sistema granular vibrado conformado por partículas cúbicas. 
31 de mayo      
7 de junio Jorge Arreola 

Instituto de Física / UASLP 

La breve estancia activa de un ion dentro del poro de un canal iónico. 

 

Liga de YouTube

 

Graphene can spontaneously develop intrinsic paramagnetism. Crucial examples are the magnetization of zig-zag edges in graphene, or the emergence of paramagnetism in open shell graphene nanostructures. I will show that graphene nanoribbons (GNR), fabricated with atomic precision on a metal surface exhibit fingerprints of π-paramagnetism on a metal surface, which can be detected and spatially localized with atomic resolution using low temperature scanning tunneling microscopy and spectroscopy [1].  

Single electron spins emerge localized at certain zigzag sites of the carbon backbone. Their presence could be detected and mapped by spatially resolving the zero-energy resonance due to the Kondo effect. We found that near-by spins are coupled into a singlet ground state and quantify their exchange interaction via singlet-triplet inelastic electron excitations. Theoretical simulations picture how electron correlations result in spin-polarized radical states with the experimentally observed spatial distributions. Extra hydrogen atoms bound to radical sites quench their magnetic moment and switch the spin of the nanostructure in half-integer amounts.

I will also review other methods for activating magnetic ground states in graphene. For example, spin states can be created on a ribbon simply by substitutional doping or by incorporating magnetic species into a ribbon using on-surface synthesis routes (see included image of a Fe porphyrin contacted to chiral nanoribbons).  In this last case, we proved that the molecular spin survives in the ribbon by using spin-excitation inelastic spectroscopy [2]. By proper selecting the position of the halogen functionalization, we fabricated linear GNR-FeTPP-GNR structures and performed electronic transport measurements [3], detecting spin-excitation fingerprints in transport mode. 

References

  • J. Li, S. Sanz, M. Corso, D.J. Choi, D. Peña, T. Frederiksen, J.I. Pascual, “Single Spin Localization and Manipulation in Graphene Open-Shell Nanostructures”, Nature Communications 10, 200 (2019).
  • J. Li, N. Merino-Díez, E. Carbonell-Sanromà, M. Vilas-Varela, D. G. de Oteyza, D. Peña, M. Corso, and J.I. Pascual, “Survival of spin state in magnetic porphyrins contacted by graphene nanoribbons”, Science Advances 4, eaaq0582 (2018) 
  • J. Li, N. Friedrich, N. Merino-Díez, D. G. de Oteyza, D. Peña, D. Jacob, and J.I. Pascual, “Electrically Addressing the Spin of a Magnetic Porphyrin through Covalently Connected Graphene Electrodes”, Nano Letters 19, 3288 (2019).
  • N. Friedrich, P. Brandimarte, J. Li, S. Saito, S. Yamaguchi, I. Pozo, D. Pena, T. Frederiksen, A. Garcia-Lekue, D. Sanchez-Portal and J.I. Pascual, “Magnetism of Topological Boundary States Induced by Boron Substitution in Graphene Nanoribbons“, Physical Review Letters 125, 146801 (2020)
  • J. Li, S. Sanz, J. Castro-Esteban, M. Vilas-Varela, N. Friedrich, T. Frederiksen, D. Peña and J.I. Pascual „Uncovering the Triplet Ground State of Triangular Graphene Nanoflakes Engineered with Atomic Precision on a Metal Surface“, Physical Review Letters 124, 177201 (2020)