Leonardo Dantas Machado José Moreira de Sousa, Cristiano Francisco Woellner; Galvao, Douglas S.
Carbon Nanoscrolls at High Impacts: A Molecular Dynamics Investigation Journal Article
In: MRS Advances, vol. 2016, 2016.
@article{deSousa2016b,
title = {Carbon Nanoscrolls at High Impacts: A Molecular Dynamics Investigation},
author = {José Moreira de Sousa, Leonardo Dantas Machado, Cristiano Francisco Woellner, Pedro Alves da Silva Autreto and Douglas S. Galvao},
url = {http://journals.cambridge.org/action/displayAbstract?fromPage=online&aid=10242265&fulltextType=RA&fileId=S2059852116002000},
doi = {10.1557/adv.2016.200},
year = {2016},
date = {2016-03-01},
journal = {MRS Advances},
volume = {2016},
abstract = {The behavior of nanostructures under high strain-rate conditions has been object of interest in recent years. For instance, recent experimental investigations showed that at high velocity impacts carbon nanotubes can unzip resulting into graphene nanoribbons. Carbon nanoscrolls (CNS) are among the structures whose high impact behavior has not yet been investigated. CNS are graphene membranes rolled up into papyrus-like structures. Their unique open-ended topology leads to properties not found in close-ended structures, such as nanotubes. Here we report a fully atomistic reactive molecular dynamics study on the behavior of CNS colliding at high velocities against solid targets. Our results show that the velocity and scroll axis orientation are key parameters to determine the resulting formed nanostructures after impact. The relative orientation of the scroll open ends and the substrate is also very important. We observed that for appropriate velocities and orientations, the nanoscrolls can experience large structural deformations and large-scale fractures. We have also observed unscrolling (scrolls going back to planar or quasi-planar graphene membranes), unzip resulting into nanoribbons, and significant reconstructions from breaking and/or formation of new chemical bonds. Another interesting result was that if the CNS impact the substrate with their open ends, for certain velocities, fused scroll walls were observed.},
keywords = {},
pubstate = {published},
tppubtype = {article}
}
Eric Perim, Douglas S. Galvao
Novel Nanoscroll Structures from Carbon Nitride Layers Proceedings
vol. 1726, no. mrsf14-1726-j05-02, 2015, (MRS Proceedings, 1726, mrsf14-1726-j05-02 ).
@proceedings{Perim2015b,
title = {Novel Nanoscroll Structures from Carbon Nitride Layers},
author = {Eric Perim, Douglas S. Galvao},
url = {http://journals.cambridge.org/action/displayAbstract?fromPage=online&aid=9700860&fileId=S1946427415004650},
doi = {DOI: 10.1557/opl.2015.465},
year = {2015},
date = {2015-01-01},
volume = {1726},
number = {mrsf14-1726-j05-02},
abstract = {Nanoscrolls consist of sheets rolled up into a papyrus-like form. Their open ends produce great radial flexibility, which can be exploited for a large variety of applications, from actuators to hydrogen storage. They have been successfully synthesized from different materials, including carbon and boron nitride. In this work we have investigated, through fully atomistic molecular dynamics simulations, the dynamics of scroll formation for a series of graphene-like carbon nitride (CN) two-dimensional systems: g-CN, triazine-based (g-C3N4), and heptazine-based (g-C3N4). Carbon nitride (CN) structures have been attracting great attention since their prediction as super hard materials. Recently, graphene-like carbon nitride (g-CN) structures have been synthesized with distinct stoichiometry and morphologies. By combining these unique CN characteristics with the structural properties inherent to nanoscrolls new nanostructures with very attractive mechanical and electronic properties could be formed. Our results show that stable nanoscrolls can be formed for all of CN structures we have investigated here. As the CN sheets have been already synthesized, these new scrolled structures are perfectly feasible and within our present-day technology.},
note = {MRS Proceedings, 1726, mrsf14-1726-j05-02 },
keywords = {},
pubstate = {published},
tppubtype = {proceedings}
}
2016

Leonardo Dantas Machado José Moreira de Sousa, Cristiano Francisco Woellner; Galvao, Douglas S.
Carbon Nanoscrolls at High Impacts: A Molecular Dynamics Investigation Journal Article
In: MRS Advances, vol. 2016, 2016.
Abstract | Links | BibTeX | Tags: Impact Molecular Dynamics, nanoscrolls
@article{deSousa2016b,
title = {Carbon Nanoscrolls at High Impacts: A Molecular Dynamics Investigation},
author = {José Moreira de Sousa, Leonardo Dantas Machado, Cristiano Francisco Woellner, Pedro Alves da Silva Autreto and Douglas S. Galvao},
url = {http://journals.cambridge.org/action/displayAbstract?fromPage=online&aid=10242265&fulltextType=RA&fileId=S2059852116002000},
doi = {10.1557/adv.2016.200},
year = {2016},
date = {2016-03-01},
journal = {MRS Advances},
volume = {2016},
abstract = {The behavior of nanostructures under high strain-rate conditions has been object of interest in recent years. For instance, recent experimental investigations showed that at high velocity impacts carbon nanotubes can unzip resulting into graphene nanoribbons. Carbon nanoscrolls (CNS) are among the structures whose high impact behavior has not yet been investigated. CNS are graphene membranes rolled up into papyrus-like structures. Their unique open-ended topology leads to properties not found in close-ended structures, such as nanotubes. Here we report a fully atomistic reactive molecular dynamics study on the behavior of CNS colliding at high velocities against solid targets. Our results show that the velocity and scroll axis orientation are key parameters to determine the resulting formed nanostructures after impact. The relative orientation of the scroll open ends and the substrate is also very important. We observed that for appropriate velocities and orientations, the nanoscrolls can experience large structural deformations and large-scale fractures. We have also observed unscrolling (scrolls going back to planar or quasi-planar graphene membranes), unzip resulting into nanoribbons, and significant reconstructions from breaking and/or formation of new chemical bonds. Another interesting result was that if the CNS impact the substrate with their open ends, for certain velocities, fused scroll walls were observed.},
keywords = {Impact Molecular Dynamics, nanoscrolls},
pubstate = {published},
tppubtype = {article}
}
2015

Eric Perim, Douglas S. Galvao
Novel Nanoscroll Structures from Carbon Nitride Layers Proceedings
vol. 1726, no. mrsf14-1726-j05-02, 2015, (MRS Proceedings, 1726, mrsf14-1726-j05-02 ).
Abstract | Links | BibTeX | Tags: carbon nitride, Molecular Dynamics, nanoscrolls
@proceedings{Perim2015b,
title = {Novel Nanoscroll Structures from Carbon Nitride Layers},
author = {Eric Perim, Douglas S. Galvao},
url = {http://journals.cambridge.org/action/displayAbstract?fromPage=online&aid=9700860&fileId=S1946427415004650},
doi = {DOI: 10.1557/opl.2015.465},
year = {2015},
date = {2015-01-01},
volume = {1726},
number = {mrsf14-1726-j05-02},
abstract = {Nanoscrolls consist of sheets rolled up into a papyrus-like form. Their open ends produce great radial flexibility, which can be exploited for a large variety of applications, from actuators to hydrogen storage. They have been successfully synthesized from different materials, including carbon and boron nitride. In this work we have investigated, through fully atomistic molecular dynamics simulations, the dynamics of scroll formation for a series of graphene-like carbon nitride (CN) two-dimensional systems: g-CN, triazine-based (g-C3N4), and heptazine-based (g-C3N4). Carbon nitride (CN) structures have been attracting great attention since their prediction as super hard materials. Recently, graphene-like carbon nitride (g-CN) structures have been synthesized with distinct stoichiometry and morphologies. By combining these unique CN characteristics with the structural properties inherent to nanoscrolls new nanostructures with very attractive mechanical and electronic properties could be formed. Our results show that stable nanoscrolls can be formed for all of CN structures we have investigated here. As the CN sheets have been already synthesized, these new scrolled structures are perfectly feasible and within our present-day technology.},
note = {MRS Proceedings, 1726, mrsf14-1726-j05-02 },
keywords = {carbon nitride, Molecular Dynamics, nanoscrolls},
pubstate = {published},
tppubtype = {proceedings}
}
http://scholar.google.com/citations?hl=en&user=95SvbM8AAAAJ