dc.creatorMúñoz, Macarena [Univ Mayor, Nucleo Matemat Fis & Estadist, Fac Ciencias, Manuel Montt 367, Santiago, Chile]
dc.creatorCárdenas, Carlos
dc.creatorContreras, Julia
dc.creatorAyers, Paul W.
dc.creatorGomez, Tatiana
dc.creatorFuentealba, Patricio
dc.date.accessioned2020-04-08T14:11:55Z
dc.date.accessioned2020-04-13T18:12:40Z
dc.date.accessioned2022-10-18T18:40:52Z
dc.date.available2020-04-08T14:11:55Z
dc.date.available2020-04-13T18:12:40Z
dc.date.available2022-10-18T18:40:52Z
dc.date.created2020-04-08T14:11:55Z
dc.date.created2020-04-13T18:12:40Z
dc.date.issued2018
dc.identifierCardenas Valencia, C., Muñoz, M., Contreras, J., Ayers, P. W., Gomez, T., & Fuentealba Rosas, P. (2018). Understanding chemical reactivity in extended systems: exploring models of chemical softness in carbon nanotubes. Acta Phys.Chim. Sin., 2018, 34(6): 631-638.
dc.identifier1000-6818
dc.identifierhttps://doi.org/10.3866/PKU.WHXB201710201
dc.identifierhttp://repositorio.umayor.cl/xmlui/handle/sibum/6159
dc.identifierDOI: 10.3866/PKU.WHXB201710201
dc.identifier.urihttps://repositorioslatinoamericanos.uchile.cl/handle/2250/4454002
dc.description.abstractChemical reactivity towards electron transfer is captured by the Fukui function. However, this is not well defined when the system or its ions have degenerate or pseudo-degenerate ground states. In such a case, the first-order chemical response is not independent of the perturbation and the correct response has to be computed using the mathematical formalism of perturbation theory for degenerate states. Spatial pseudo-degeneracy is ubiquitous in nanostructures with high symmetry and totally extended systems. Given the size of these systems, using degenerate-state perturbation theory is impractical because it requires the calculation of many excited states. Here we present an alternative to compute the chemical response of extended systems using models of local softness in terms of the local density of states. The local softness is approximately equal to the density of states at the Fermi level. However, such approximation leaves out the contribution of inner states. In order to include and weight the contribution of the states around the Fermi level, a model inspired by the long-range behavior of the local softness is presented. Single wall capped carbon nanotubes (SWCCNT) illustrate the limitation of the frontier orbital theory in extended systems. Thus, we have used a C-360 SWCCNT to test the proposed model and how it compares with available models based on the local density of states. Interestingly, a simple Huckel approximation captures the main features of chemical response of these systems. Our results suggest that density-of-states models of the softness along simple tight binding Hamiltonians could be used to explore the chemical reactivity of more complex system, such a surfaces and nanoparticles.
dc.languageen
dc.publisherPEKING UNIV PRESS
dc.rightsAttribution-NonCommercial-NoDerivs 3.0 Chile
dc.sourceActa Phys.-Chim. Sin., 2018. 34(6): p. 631-638
dc.subjectChemistry, Physical
dc.titleUnderstanding Chemical Reactivity in Extended Systems: Exploring Models of Chemical Softness in Carbon Nanotubes
dc.typeArtículos de revistas


Este ítem pertenece a la siguiente institución