public:overview
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- | [{{:public: | + | See also [[https://cordis.europa.eu/ |
=== Does chemistry need more physics ? === | === Does chemistry need more physics ? === | ||
- | The building blocks of chemistry are organized in the periodic table, which requires quantum mechanics for its understanding. In the 1980s it was realized that in order to correctly describe the heavy elements in the lower part of the periodic table, the special theory of relativity | + | [{{: |
+ | |||
+ | === Is the vacuum really empty ? === | ||
+ | |||
+ | An ideal situation for accurate calculations is a molecule alone in space at 0K. However, is the vacuum really empty ? It has been shown that placing a molecule in an otherwise empty cavity will change its reactivity [1]. This is explained by the coupling of the molecule to the zero-point vibrations of the quantized electromagnetic field. | ||
+ | [{{: | ||
+ | * **Vacuum polarization**: | ||
+ | * ** Electron self-energy**: | ||
+ | The splitting is a mere 4 μeV, but for hydrogen-like uranium the splitting has grown to an impressive 76 eV. | ||
+ | It is therefore legitimate to ask if QED-effects could play a role in the chemistry of heavy elements. | ||
+ | |||
+ | === Project objectives === | ||
+ | - Set new standards for correlated relativistic molecular calculations, | ||
+ | - Develop a variational approach to QED rather than the usual perturbative one (QED without diagrams) | ||
+ | The most challenging part of the project is to devise ways of handling the divergences of QED using the computational framework of quantum chemistry. | ||
+ | == References == | ||
+ | <fs smaller> | ||
+ | [1]. J.A. Hutchison, T. Schwartz, C. Genet, E. Devaux, and T. W. Ebbesen, “Modifying Chemical Landscapes by Coupling to Vacuum Fields”, [[http:// | ||
+ | </fs> |
public/overview.1620572961.txt.gz · Last modified: 2021/05/09 17:09 by tsaue