CH-452 / 4 crédits

Enseignant: Bonella Sara

Langue: Anglais


Summary

This course will discuss the main methods for the simulation of quantum time dependent properties for molecular systems. Basic notions of density functional theory will be covered. An introduction to simulating nuclear quantum effects for adiabatic and non adiabatic dynamics will be provided.

Content

Keywords

simulation and modelling of materials

quantum systems

Learning Prerequisites

Required courses

Basic quantum mechanics

Learning Outcomes

By the end of the course, the student must be able to:

  • Prove the basic theorems of DFT
  • Interpret input and output of typical community codes for classical and ab initio molecular dynamics
  • Discuss the evolution of the different electronic structure methods for electronic excited states
  • Discuss basic equations for quantum evolution of nuclei and electrons

Transversal skills

  • Evaluate one's own performance in the team, receive and respond appropriately to feedback.
  • Summarize an article or a technical report.

Expected student activities

Weakly summary (three point bullet list) of lecture material + question

Development (in team) of small research project, computational or based on literature

Oral presentation of research project

 

Assessment methods

1/4 Evaluation of weakly summaries

1/2 Development and presentation of research project

1/4 Oral exam on course topics

 

 

Resources

Moodle Link

Dans les plans d'études

  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines
  • Semestre: Automne
  • Forme de l'examen: Oral (session d'hiver)
  • Matière examinée: Computational methods in molecular quantum mechanics
  • Cours: 2 Heure(s) hebdo x 14 semaines
  • Exercices: 1 Heure(s) hebdo x 14 semaines

Semaine de référence

 LuMaMeJeVe
8-9     
9-10     
10-11     
11-12     
12-13     
13-14     
14-15     
15-16     
16-17     
17-18     
18-19     
19-20     
20-21     
21-22     

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