Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space
Abstract The reason for the abundance of molecular hydrogen (H2) in space remains unresolved. Here we study collision dynamics under spacelike conditions to test H2 formation mechanisms where carbonaceous dust grains may have a catalytic role. Density functional theory molecular dynamics simulates a...
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Nature Portfolio
2025-04-01
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| Series: | Communications Chemistry |
| Online Access: | https://doi.org/10.1038/s42004-025-01489-z |
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| author | Yuzhen Guo David R. McKenzie |
| author_facet | Yuzhen Guo David R. McKenzie |
| author_sort | Yuzhen Guo |
| collection | DOAJ |
| description | Abstract The reason for the abundance of molecular hydrogen (H2) in space remains unresolved. Here we study collision dynamics under spacelike conditions to test H2 formation mechanisms where carbonaceous dust grains may have a catalytic role. Density functional theory molecular dynamics simulates atomic hydrogen capture and H2 formation on the surface of buckminsterfullerene as a carbonaceous cosmic dust model. Maximally localized Wannier functions are applied to examine the electronic bonding during transition states. The fullerene surface is shown to be effective at warm (50K) and low (10K) temperatures in achieving atomic H chemisorption, potentially explaining the observed broad temperature range for efficient H2 formation. We revise the Eley-Rideal mechanism and propose that both it and the Langmuir-Hinshelwood mechanism, induced by thermal hopping, contribute to bursts of H2 formation during energetic events. Additionally, we show how fullerene maintains the abundance of H2 in space by selectively preventing H2 molecules from capture. |
| format | Article |
| id | doaj-art-62897bfe8f0646438d81ef30372dca40 |
| institution | OA Journals |
| issn | 2399-3669 |
| language | English |
| publishDate | 2025-04-01 |
| publisher | Nature Portfolio |
| record_format | Article |
| series | Communications Chemistry |
| spelling | doaj-art-62897bfe8f0646438d81ef30372dca402025-08-20T01:53:07ZengNature PortfolioCommunications Chemistry2399-36692025-04-01811710.1038/s42004-025-01489-zAb-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in spaceYuzhen Guo0David R. McKenzie1Materials Physics Laboratory, School of Physics, The University of SydneyMaterials Physics Laboratory, School of Physics, The University of SydneyAbstract The reason for the abundance of molecular hydrogen (H2) in space remains unresolved. Here we study collision dynamics under spacelike conditions to test H2 formation mechanisms where carbonaceous dust grains may have a catalytic role. Density functional theory molecular dynamics simulates atomic hydrogen capture and H2 formation on the surface of buckminsterfullerene as a carbonaceous cosmic dust model. Maximally localized Wannier functions are applied to examine the electronic bonding during transition states. The fullerene surface is shown to be effective at warm (50K) and low (10K) temperatures in achieving atomic H chemisorption, potentially explaining the observed broad temperature range for efficient H2 formation. We revise the Eley-Rideal mechanism and propose that both it and the Langmuir-Hinshelwood mechanism, induced by thermal hopping, contribute to bursts of H2 formation during energetic events. Additionally, we show how fullerene maintains the abundance of H2 in space by selectively preventing H2 molecules from capture.https://doi.org/10.1038/s42004-025-01489-z |
| spellingShingle | Yuzhen Guo David R. McKenzie Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space Communications Chemistry |
| title | Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space |
| title_full | Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space |
| title_fullStr | Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space |
| title_full_unstemmed | Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space |
| title_short | Ab-initio dynamic study of mechanisms for dust-mediated molecular hydrogen formation in space |
| title_sort | ab initio dynamic study of mechanisms for dust mediated molecular hydrogen formation in space |
| url | https://doi.org/10.1038/s42004-025-01489-z |
| work_keys_str_mv | AT yuzhenguo abinitiodynamicstudyofmechanismsfordustmediatedmolecularhydrogenformationinspace AT davidrmckenzie abinitiodynamicstudyofmechanismsfordustmediatedmolecularhydrogenformationinspace |