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        <dc:date>2020-12-07T17:22:27+00:00</dc:date>
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        <title>teaching:progappchim:matplotlib_gallery:potentiel_energy_surface</title>
        <link>https://dvillers.umons.ac.be/wiki/teaching:progappchim:matplotlib_gallery:potentiel_energy_surface?rev=1607358147&amp;do=diff</link>
        <description>Surface d&#039;énergie potentielle

Historique

Eyring et Polanyi ont publié en 1931 l&#039;article On Simple Gas Reactions dans lequel ils décrivent les trajets des atomes dans la réaction  + H --&gt; H +  (échange d&#039;atomes). Ces travaux aboutiront au développement des notions de $E_{bond}= D_e [\exp(-2\beta(r-r_e))-2\exp(-\beta(r-r_e))]$$E_{ant}= \frac{D_e}{2} [\exp(-2\beta(r-r_e))+2\exp(-\beta(r-r_e))]$$r_e$$D_e$$\beta$$E_{bond}= \frac{Q_{AB}+\alpha_{AB}}{1+S^2_{AB}} = \frac{Q_{AB}+\alpha_{AB}}{1+k}$$E_{a…</description>
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        <dc:date>2022-03-14T17:28:30+00:00</dc:date>
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        <title>teaching:progappchim:openbabel_jmol</title>
        <link>https://dvillers.umons.ac.be/wiki/teaching:progappchim:openbabel_jmol?rev=1647275310&amp;do=diff</link>
        <description>OpenBabel et Jmol

OpenBabel

OpenBabel est un ensemble de programme permettant de manipuler et convertir les fichiers de description de molécules dans différents formats.

	*  Site officiel : &lt;http://openbabel.org/wiki/Main_Page&gt;
	*  Interfaçage en Python : &lt;http://openbabel.org/wiki/Python&gt;

Pour utiliser OpenBabel en python, il faut installer au préalable ces outils. Sous Linux (Debian, Ubuntu,</description>
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        <description>Bases de données libres en chimie

Références

Databases, databank

	*  Chemical databases +...
	*  &lt;http://www.mtdcadd.com/&gt;
	*  &lt;http://www.drugbank.ca/&gt;
	*  &lt;http://www.genome.jp/kegg/&gt;
	*  &lt;http://zinc.docking.org/&gt;
	*  &lt;http://bidd.nus.edu.sg/group/cjttd/&gt;

Données de wikipedia

	*  Chembox template
		*  &lt;http://en.wikipedia.org/wiki/Category:Commodity_chemicals&gt;
		*  &lt;http://fr.wikipedia.org/wiki/Cat%C3%A9gorie:Produit_chimique&gt;
		*  &lt;http://en.wikipedia.org/wiki/Category:Chemical_substanc…</description>
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        <title>teaching:progappchim:epidemie_coronavirus</title>
        <link>https://dvillers.umons.ac.be/wiki/teaching:progappchim:epidemie_coronavirus?rev=1594605869&amp;do=diff</link>
        <description>Épidémie du coronavirus COVID-19

Références :

	*  Coronavirus disease 2019
	*  Maladie à coronavirus 2019
	*  Coronavirus COVID-19 Global Cases by Johns Hopkins CSSE
	*  Coronavirus (COVID-19) Mortality Rate
	*  data : &lt;https://github.com/CSSEGISandData/COVID-19/tree/master/csse_covid_19_data&gt;

Programmes de représentations

FIXME

Quelques simulations SEIR effectuées par des scientifiques :

	*  Marius Gilbert (ULB/FNRS, Spatial Epidemiology lab (SpELL), &lt;https://twitter.com/mariusgilbert/sta…</description>
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        <description>Représentation du potentiel de Lennard-Jones

L&#039;utilisation de fonctions en python permet de nombreuses applications par la création de graphiques. En utilisant la “bibliothèque matplotlib/pylab”, vous pourrez donc aisément créer des graphes de fonction.$V_{LJ} = 4\varepsilon \left[ \left(\frac{\sigma}{r}\right)^{12} - \left(\frac{\sigma}{r}\right)^{6} \right] = \varepsilon \left[ \left(\frac{r_{m}}{r}\right)^{12} - 2\left(\frac{r_{m}}{r}\right)^{6} \right]$$r_{m} = 2^{1/6} \sigma$$U_{tot} = \fr…</description>
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        <title>teaching:progappchim:ph-3d</title>
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        <description>Représentation 3D du pH

Cas d&#039;un acide en fonction d&#039;un ajout de base et d&#039;une dilution globale : cf. cet article


#! /usr/bin/env python
# -*- coding: utf-8 -*-
&quot;&quot;&quot;
Use of numpy polynomes to compute pH of weak acid and strong base

3D topographic surface generation in the same conditions as
the following paper :
3-D Surface Visualization of pH Titration “Topos”:
Equivalence Point Cliffs, Dilution Ramps, and Buffer Plateaus&quot;  
Garon C. Smith, Md Mainul Hossain and Patrick MacCarthy
J. Chem. Ed…</description>
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        <description>Potentiel de Morse

Potentiel de Morse et approximation harmonique, avec représentation des niveaux d&#039;énergie des modèles quantiques correspondants.

Code source : 


#! /usr/bin/env python
# -*- coding: utf-8 -*-
&quot;&quot;&quot;
Représentation du potentiel de Morse pour H2
http://en.wikipedia.org/wiki/Morse_potential
http://en.wikipedia.org/wiki/Quantum_harmonic_oscillator approximation harmonique
D_e = 7.6E-19 J
a = 19.3E-15 m
r_e= 74.1E-12 m
dérivée de seconde d2V/dr2 = 2 * D_e * a**2.
&quot;&quot;&quot;
import matplot…</description>
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