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Dive into the research topics where Leonardo J. A. Siqueira is active.

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Featured researches published by Leonardo J. A. Siqueira.


Journal of Physical Chemistry B | 2008

Transport Coefficients, Raman Spectroscopy, and Computer Simulation of Lithium Salt Solutions in an Ionic Liquid

Marcelo J. Monteiro; Fernanda F. C. Bazito; Leonardo J. A. Siqueira; Mauro C. C. Ribeiro; Roberto M. Torresi

Lithium salt solutions of Li(CF3SO2)2N, LiTFSI, in a room-temperature ionic liquid (RTIL), 1-butyl-2,3-dimethyl-imidazolium cation, BMMI, and the (CF3SO2)2N(-), bis(trifluoromethanesulfonyl)imide anion, [BMMI][TFSI], were prepared in different concentrations. Thermal properties, density, viscosity, ionic conductivity, and self-diffusion coefficients were determined at different temperatures for pure [BMMI][TFSI] and the lithium solutions. Raman spectroscopy measurements and computer simulations were also carried out in order to understand the microscopic origin of the observed changes in transport coefficients. Slopes of Walden plots for conductivity and fluidity, and the ratio between the actual conductivity and the Nernst-Einstein estimate for conductivity, decrease with increasing LiTFSI content. All of these studies indicated the formation of aggregates of different chemical nature, as it is corroborated by the Raman spectra. In addition, molecular dynamics (MD) simulations showed that the coordination of Li+ by oxygen atoms of TFSI anions changes with Li+ concentration producing a remarkable change of the RTIL structure with a concomitant reduction of diffusion coefficients of all species in the solutions.


Journal of Physical Chemistry B | 2009

Alkoxy Chain Effect on the Viscosity of a Quaternary Ammonium Ionic Liquid: Molecular Dynamics Simulations

Leonardo J. A. Siqueira; Mauro C. C. Ribeiro

The viscosity of ionic liquids based on quaternary ammonium cations is reduced when one of the alkyl chains is replaced by an alkoxy chain ( Zhou et al. Chem. Eur. J. 2005 , 11 , 752. ). A microscopic picture of the role played by the ether function in decreasing the viscosity of quaternary ammonium ionic liquids is provided here by molecular dynamics (MD) simulations. A model for the ionic liquid N-ethyl-N,N-dimethyl-N-(2-methoxyethyl)ammonium bis(trifluoromethanesulfonyl)imide, MOENM(2)E TFSI, is compared to the tetraalkylammonium counterpart. The alkoxy derivative has lower viscosity, higher ionic diffusion coefficients, and higher conductivity than the tetraalkyl system at the same density and temperature. A clear signature of the ether function on the liquid structure is observed in cation-cation correlations, but not in anion-anion or anion-cation correlations. In both the alkyl and the alkoxy ionic liquids, there is aggregation of long chains of neighboring cations within micelle-like structures. The MD simulations indicate that the less effective assembly between the more flexible alkoxy chains, in comparison to alkyl chains, is the structural reason for higher ionic mobility in MOENM(2)E TFSI.


Journal of Chemical Physics | 2011

Charge ordering and intermediate range order in ammonium ionic liquids

Leonardo J. A. Siqueira; Mauro C. C. Ribeiro

Molecular dynamics simulations were performed for ionic liquids based on the bis(trifluoromethylsulfonyl)imide anion, [NTf(2)], and ammonium cations with increasing length of the alkyl chain and ether functionalized chain. The signature of charge ordering is a sharp peak in the charge-charge structure factor, S(qq)(k), whose intensity is barely affected for longer carbon chain in tetraalkylammonium systems, but decreases in ether functionalized ionic liquids. The first sharp diffraction peak (FSDP) and the corresponding intermediate range order (IRO) are observed in the total S(k) of ionic liquids containing ammonium cations with relatively long chains. The intensity of the FSDP is lower in the total S(k) of the ether derivative in comparison with the tetraalkylammonium counterpart of the same chain length. It is shown that the nature of the IRO is structural heterogeneity of polar and non-polar domains, even though domains defined by chain interactions in the ether derivatives become more polar. Charge correlation in the ether derivative is modified because cations can be coordinated by oxygen atoms of the ether functionalized chain of neighboring cations.


Journal of Physical Chemistry B | 2008

Shielding of Ionic Interactions by Sulfur Dioxide in an Ionic Liquid

Leonardo J. A. Siqueira; Rômulo A. Ando; Fernanda F. C. Bazito; Roberto M. Torresi; Paulo Sérgio da Silva Santos; Mauro C. C. Ribeiro

The effect of adding SO2 on the structure and dynamics of 1-butyl-3-methylimidazolium bromide (BMIBr) was investigated by low-frequency Raman spectroscopy and molecular dynamics (MD) simulations. The MD simulations indicate that the long-range structure of neat BMIBr is disrupted resulting in a liquid with relatively low viscosity and high conductivity, but strong correlation of ionic motion persists in the BMIBr-SO2 mixture due to ionic pairing. Raman spectra within the 5<omega<200 cm(-1) range at low temperature reveal the short-time dynamics, which is consistent with the vibrational density of states calculated by MD simulations. Several time correlation functions calculated by MD simulations give further insights on the structural relaxation of BMIBr-SO2.


Journal of Chemical Physics | 2005

Molecular dynamics simulation of the polymer electrolyte poly(ethylene oxide)/LiClO4. II. Dynamical properties

Leonardo J. A. Siqueira; Mauro C. C. Ribeiro

The dynamical properties of the polymer electrolyte poly(ethylene oxide) (PEO)LiClO(4) have been investigated by molecular dynamics simulations. The effect of changing salt concentration and temperature was evaluated on several time correlation functions. Ionic displacements projected on different directions reveal anisotropy in short-time (rattling) and long-time (diffusive) dynamics of Li(+) cations. It is shown that ionic mobility is coupled to the segmental motion of the polymeric chain. Structural relaxation is probed by the intermediate scattering function F(k,t) at several wave vectors. Good agreement was found between calculated and experimental F(k,t) for pure PEO. A remarkable slowing down of polymer relaxation is observed upon addition of the salt. The ionic conductivity estimated by the Nernst-Einstein equation is approximately ten times higher than the actual conductivity calculated by the time correlation function of charge current.


Journal of Chemical Physics | 2003

Molecular dynamics simulation of molten sodium chlorate

Leonardo J. A. Siqueira; Sérgio M. Urahata; Mauro C. C. Ribeiro

Molecular dynamics (MD) simulation has been used in a detailed investigation of structure and dynamics of molten sodium chlorate, NaClO3. Results obtained with nonpolarizable and polarizable models are compared, the latter being implemented by using a fluctuating charges approach for the anions. The partial charges of the nonpolarizable model and the parameters of the polarizable model were obtained by ab initio calculations of a single ClO3− anion. The calculated static structure factor of molten NaClO3 is in good agreement with recent neutron scattering results. A detailed picture of the distribution of cations-around the anions is provided. Proper to the rather large dipole moment of the ClO3− anion, short-range dipole ordering between pair of anions is discernible in the MD simulations. The equilibrium structure of molten NaClO3 is not too affected by including polarization effects on the anions, but significant polarization effects are observed in the dynamics of the simulated system. The ionic diffu...


Journal of Physical Chemistry B | 2011

Effect of SO2 on the Transport Properties of an Imidazolium Ionic Liquid and Its Lithium Solution

Marcelo J. Monteiro; Rômulo A. Ando; Leonardo J. A. Siqueira; Fernanda F. Camilo; Paulo Sérgio da Silva Santos; Mauro C. C. Ribeiro; Roberto M. Torresi

Transport coefficients have been measured as a function of the concentration of sulfur dioxide, SO(2), dissolved in 1-butyl-2,3-dimethylimidazolium bis(trifluoromethylsulfonyl)imide, [BMMI][Tf(2)N], as well as in its lithium salt solution, Li[Tf(2)N]. The SO(2) reduces viscosity and density and increases conductivity and diffusion coefficients in both the neat [BMMI][Tf(2)N] and the [BMMI][Tf(2)N]-Li[Tf(2)N] solution. The conductivity enhancement is not assigned to a simple viscosity effect; the weakening of ionic interactions upon SO(2) addition also plays a role. Microscopic details of the SO(2) effect were unraveled using Raman spectroscopy and molecular dynamics (MD) simulations. The Raman spectra suggest that the Li(+)-[Tf(2)N] interaction is barely affected by SO(2), and the SO(2)-[Tf(2)N] interaction is weaker than previously observed in an investigation of an ionic liquid containing the bromide anion. Transport coefficients calculated by MD simulations show the same trend as the experimental data with respect to SO(2) content. The MD simulations provide structural information on SO(2) molecules around [Tf(2)N], in particular the interaction of the sulfur atom of SO(2) with oxygen and fluorine atoms of the anion. The SO(2)-[BMMI] interaction is also important because the [BMMI] cations with above-average mobility have a larger number of nearest-neighbor SO(2) molecules.


Journal of Physical Chemistry B | 2012

The Equilibrium Structure of Lithium Salt Solutions in Ether-Functionalized Ammonium Ionic Liquids

Pedro Henrique Figueiredo; Leonardo J. A. Siqueira; Mauro C. C. Ribeiro

Molecular dynamics simulations have been performed for ionic liquids based on a ternary mixture of lithium and ammonium cations and a common anion, bis(trifluoromethylsulfonyl)imide, [Tf(2)N](-). We address structural changes resulting from adding Li(+) in ionic liquids with increasing length of an ether-functionalized chain in the ammonium cation. The calculation of static structure factors reveals the lithium effect on charge ordering and intermediate range order in comparison with the neat ionic liquids. The charge ordering is modified in the lithium solution because the coordination of [Tf(2)N](-) toward Li(+) is much stronger than ammonium cations. Intermediate range order is observed in neat ionic liquids based on ammonium cations with a long chain, but in the lithium solutions, there is also a nonhomogenous distribution of Li(+) cations. The presence of Li(+) enhances interactions between the ammonium cations due to correlations between the oxygen atom of the ether chain and the nitrogen atom of another ammonium cation.


Journal of Physical Chemistry B | 2007

The sulfur dioxide-1-butyl-3-methylimidazolium bromide interaction: drastic changes in structural and physical properties.

Rômulo A. Ando; Leonardo J. A. Siqueira; Fernanda F. C. Bazito; Roberto M. Torresi; Paulo Sérgio da Silva Santos


Journal of Physical Chemistry B | 2007

Molecular Dynamics Simulation of the Ionic Liquid N-Ethyl-N,N-dimethyl-N-(2-methoxyethyl)ammonium Bis(trifluoromethanesulfonyl)imide

Leonardo J. A. Siqueira; Mauro C. C. Ribeiro

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Fernanda F. Camilo

Federal University of São Paulo

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Filipe S. F. Jacinto

Universidade Federal Rural do Rio de Janeiro

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Gustavo F. S. Andrade

Universidade Federal de Juiz de Fora

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