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Dive into the research topics where Jonathan Laflamme Janssen is active.

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Featured researches published by Jonathan Laflamme Janssen.


Physical Review B | 2011

Electron-phonon coupling in the C60 fullerene within the many-body GW approach

Carina Faber; Jonathan Laflamme Janssen; Michel Côté; Runge; Xavier Blase

We study the electron-phonon coupling in the C60 fullerene within the first-principles GW approach, focusing on the lowest unoccupied t1u threefold electronic state which is relevant for the superconducting transition in electron-doped fullerides. It is shown that the strength of the coupling is significantly enhanced as compared to standard density functional theory calculations with (semi)local functionals, with a 48% increase of the electron-phonon potential Vep with respect to the LDA value. The calculated GW value for the contribution from the Hg modes of 93 meV comes within 4% of the most recent experimental values. The present results call for a reinvestigation of previous density functional based calculations of electron-phonon coupling in covalent systems in general.


Physical Review B | 2014

Temperature dependence of electronic eigenenergies in the adiabatic harmonic approximation

Samuel Poncé; Gabriel Geadah-Antonius; Yannick Gillet; Paul Boulanger; Jonathan Laflamme Janssen; A. C. Marini; Michel Côté; Xavier Gonze

The renormalization of electronic eigenenergies due to electron-phonon interactions (temperature dependence and zero-point motion effect) is important in many materials. We address it in the adiabatic harmonic approximation, based on first principles (e.g., density-functional theory), from different points of view: directly from atomic position fluctuations or, alternatively, from Janak’s theorem generalized to the case where the Helmholtz free energy, including the vibrational entropy, is used.We prove their equivalence, based on the usual form of Janak’s theorem and on the dynamical equation. We then also place the Allen-Heine-Cardona (AHC) theory of the renormalization in a first-principles context. The AHC theory relies on the rigid-ion approximation, and naturally leads to a self-energy (Fan) contribution and a Debye-Waller contribution. Such a splitting can also be done for the complete harmonic adiabatic expression, in which the rigid-ion approximation is not required. A numerical study within the density-functional perturbation theory framework allows us to compare the AHC theory with frozen-phonon calculations, with or without the rigid-ion approximation. For the two different numerical approaches without non-rigid-ion terms, the agreement is better than 7 μeV in the case of diamond, which represent an agreement to five significant digits. The magnitude of the non-rigid-ion terms in this case is also presented, distinguishing specific phonon modes contributions to different electronic eigenenergies.


Physical Review B | 2015

Efficient dielectric matrix calculations using the Lanczos algorithm for fast many-body

Jonathan Laflamme Janssen; Bruno Rousseau; Michel Côté

We present a


ACS Nano | 2015

G_0W_0

Delphine Bouilly; Jonathan Laflamme Janssen; Janie Cabana; Michel Côté; Richard Martel

G_0W_0


Physical Review B | 2010

implementations

Jonathan Laflamme Janssen; Michel Côté; Steven G. Louie; Marvin L. Cohen

implementation that assesses the two major bottlenecks of traditional plane-waves implementations, the summations over conduction states and the inversion of the dielectric matrix, without introducing new approximations in the formalism. The first bottleneck is circumvented by converting the summations into Sternheimer equations. Then, the novel avenue of expressing the dielectric matrix in a Lanczos basis is developed, which reduces the matrix size by orders of magnitude while being computationally efficient. We also develop a model dielectric operator that allows us to further reduce the size of the dielectric matrix without accuracy loss. Furthermore, we develop a scheme that reduces the numerical cost of the contour deformation technique to the level of the lightest plasmon pole model. Finally, the use of the simplified quasi-minimal residual scheme in replacement of the conjugate gradients algorithm allows a direct evaluation of the


Physical Review B | 2010

Graft-Induced Midgap States in Functionalized Carbon Nanotubes

Jonathan Laflamme Janssen; Michel Côté; Steven G. Louie; Marvin L. Cohen

G_0W_0


Physical Review B | 2016

Electron-phonon coupling inC60using hybrid functionals

Jonathan Laflamme Janssen; Yannick Gillet; Samuel Poncé; Alexandre Martin; Marc Torrent; Xavier Gonze

corrections at the desired real frequencies, without need for analytical continuation. The performance of the resulting


Nanotechnology | 2013

Electron-phonon coupling in C60 using hybrid functionals

Jonathan Laflamme Janssen; Jason Beaudin; Nicholas Hine; Peter D. Haynes; Michel Côté

G_0W_0


Physical Review B | 2010

Precise effective masses from density functional perturbation theory

Jonathan Laflamme Janssen; Michel Côté; Steven G. Louie; Marvin L. Cohen

implementation is demonstrated by comparison with a traditional plane-waves implementation, which reveals a 500-fold speedup for the silane molecule. Finally, the accuracy of our


Bulletin of the American Physical Society | 2015

Bromophenyl functionalization of carbon nanotubes: an ab initio study

Jonathan Laflamme Janssen; Xavier Gonze

G_0W_0

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Michel Côté

Université de Montréal

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Bruno Rousseau

Spanish National Research Council

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Jason Beaudin

Université de Montréal

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Xavier Gonze

Université catholique de Louvain

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Samuel Poncé

Université catholique de Louvain

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Yannick Gillet

Université catholique de Louvain

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