Assessment of lifetime resolution limits in time-resolved photoacoustic calorimetry vs. transducer frequencies: setting the stage for picosecond resolution

Photochemical & Photobiological Sciences - Tập 15 - Trang 204-210 - 2016
Fábio A. Schaberle1,2, Francisco de Assis M. G. Rego Filho3, Luís A. Reis1, Luis G. Arnaut1
1Chemistry Department, University of Coimbra, Coimbra, Portugal
2Luzitin SA, Ed. Bluepharma, S. Martinho do Bispo, Coimbra, Portugal
3CAPES Foundation, Ministry of Education of Brazil, Brasília, DF, Brazil

Tóm tắt

Time-resolved photoacoustic calorimetry (PAC) gives access to lifetimes and energy fractions of reaction intermediates by deconvolution of the photoacoustic wave of a sample (E-wave) with that of the instrumental response (T-wave). The ability to discriminate between short lifetimes increases with transducer frequencies employed to detect the PAC waves. We investigate the lifetime resolution limits of PAC as a function of the transducer frequencies using the instrumental response obtained with the photoacoustic reference 2-hydroxybenzophenone in toluene or acetonitrile. The instrumental response was obtained for a set of transducers with central frequencies ranging from 0.5 MHz up to 225 MHz. The simulated dependence of the lifetime resolution with the transducer frequencies was anchored on experimental data obtained for the singlet state of naphthalene with a 2.25 MHz transducer. The shortest lifetime resolved with the 2.25 MHz transducer was 19 ns and our modelling of the transducer responses indicates that sub-nanosecond lifetimes of photoacoustic transients can be resolved with transducers of central frequencies above 100 MHz.

Tài liệu tham khảo

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