The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H atoms on grain surfaces. On surfaces, hydrogen atoms can be physisorbed and chemisorbed and their mobility can be governed by quantum mechanical tunneling or thermal hopping. We have developed a model for molecular hydrogen formation on surfaces. This model solves the time-dependent kinetic rate equation for atomic and molecular hydrogen and their isotopes, taking the presence of physisorbed and chemisorbed sites, as well as quantum mechanical diffusion and thermal hopping, into account. The results show that the time evolution of this system is mainly governed by the binding energies and barriers against migration of the adsorbed species. We ha...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
The interactions of atomic and molecular hydrogen with bare interstellar dust grain surfaces are imp...
The interactions of atomic and molecular hydrogen with bare interstellar dust grain surfaces are imp...
The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H ato...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H ato...
The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H ato...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
The interactions of atomic and molecular hydrogen with bare interstellar dust grain surfaces are imp...
The interactions of atomic and molecular hydrogen with bare interstellar dust grain surfaces are imp...
The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H ato...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H ato...
The most abundant interstellar molecule, H-2, is generally thought to form by recombination of H ato...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
The most abundant interstellar molecule, H2, is generally thought to form by recombination of H atom...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
We have developed a model for molecular hydrogen formation under astrophysically relevant conditions...
The interactions of atomic and molecular hydrogen with bare interstellar dust grain surfaces are imp...
The interactions of atomic and molecular hydrogen with bare interstellar dust grain surfaces are imp...