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- W2897671683 abstract "Over the past several years, lasers have been instrumental in a wide variety of experiments designed to elucidate the mechanism of formaldehyde photo-dissociation at an unprecented level of detail. The aim of this research is to understand exactly how electronically excited (S1) gas pahse H2CO evolves in time to become H2 + CO photoproducts, a remarkably complex process. The interplay of theory and experiment have produced a clear picture of the collision-free decay of S1, and very recent experiments suggest that the collision-induced decay is quite similar. This paper will review the state of the formaldehyde art, including recent contributions from a wide variety of workers.Over the past several years, lasers have been instrumental in a wide variety of experiments designed to elucidate the mechanism of formaldehyde photo-dissociation at an unprecented level of detail. The aim of this research is to understand exactly how electronically excited (S1) gas pahse H2CO evolves in time to become H2 + CO photoproducts, a remarkably complex process. The interplay of theory and experiment have produced a clear picture of the collision-free decay of S1, and very recent experiments suggest that the collision-induced decay is quite similar. This paper will review the state of the formaldehyde art, including recent contributions from a wide variety of workers." @default.
- W2897671683 created "2018-10-26" @default.
- W2897671683 creator A5077564904 @default.
- W2897671683 date "1982-01-01" @default.
- W2897671683 modified "2023-09-27" @default.
- W2897671683 title "Single rotational level fluorescence lifetimes and formaldehyde photochemistry" @default.
- W2897671683 doi "https://doi.org/10.2351/1.5057329" @default.
- W2897671683 hasPublicationYear "1982" @default.
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