Pregled bibliografske jedinice broj: 167491
Four-wave mixing spectroscopy of the S1 state of all trans ß-Carotene using ultrashort laser pulses
Four-wave mixing spectroscopy of the S1 state of all trans ß-Carotene using ultrashort laser pulses // Verhandlungen der Deutschen Physikalischen, 7/2004. 68. Physikertagung und AMOP-Frühjahrstagung München 2004
Bad Honnef: Deutsche Physikalische Gesellschaft, 2004. str. 97-97 (predavanje, nije recenziran, sažetak, znanstveni)
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Naslov
Four-wave mixing spectroscopy of the S1 state of all trans ß-Carotene using ultrashort laser pulses
Autori
Skenderović, Hrvoje ; Hornung, T. ; Motzkus, M.
Vrsta, podvrsta i kategorija rada
Sažeci sa skupova, sažetak, znanstveni
Izvornik
Verhandlungen der Deutschen Physikalischen, 7/2004. 68. Physikertagung und AMOP-Frühjahrstagung München 2004
/ - Bad Honnef : Deutsche Physikalische Gesellschaft, 2004, 97-97
Skup
68. Physikertagung und AMOP-Frühjahrstagung
Mjesto i datum
München, Njemačka, 22.03.2004. - 26.03.2004
Vrsta sudjelovanja
Predavanje
Vrsta recenzije
Nije recenziran
Ključne riječi
Time-resolved degenerate four wave mixing
Sažetak
Time-resolved degenerate four wave mixing (DFWM) and pump + DFWM with a temporal resolution of 16 fs is used to excite and probe the modes of the electronic ground 11Ag-, (S0), and the lowest lying dipole forbidden excited electronic state 2 1Ag-, (S1), of all trans-ß-Carotene. In a first step, we performed resonant (center wavelength 490-507nm) and non resonant (560nm) DFWM spectroscopy to characterize the temporal dynamics of the S0 modes. The signal shows long time dynamics together with pronounced oscillations. The decay with a time constant of 6-8 ps corresponds to the well-known relaxation of S1-S0, while the oscillations are attributed to the high-frequency vibrational modes of the S0 state (1000 - 1500 cm-1). When an additional pump pulse (485 nm) is introduced, population of the excited S1 state is generated by energy relaxation and its vibrational dynamics can be probed by the time-resolved DFWM (560 nm) probe. Fast oscillations are observed which correspond exclusively to high-frequency vibrations of the S1 state.
Izvorni jezik
Engleski
Znanstvena područja
Fizika
POVEZANOST RADA