研究目的
Investigating the two-photon absorption (2PA) properties of highly conjugated, fused-ring, quadrupolar organic chromophores with large two-photon absorption cross-sections in the near-infrared.
研究成果
The study revealed that increasing core size and acceptor strength in highly conjugated, fused-ring, quadrupolar organic chromophores leads to red-shifted and enhanced two-photon absorption in the near-infrared. TT compounds demonstrated larger 2PA cross-sections than their indacene counterparts due to greater electron-richness of their cores. ESA contributions were found to be appreciable but the effective response was predominantly instantaneous 2PA.
研究不足
The study is limited to chloroform solutions of the chromophores. The spectral range limitations of the spectrometer and the onset of 1PA bleach at ca. 800 nm for compounds with large cores prevented the ascertainment of whether analogous bands were present for the other indacene and TT dyes.
1:Experimental Design and Method Selection:
Femtosecond ND2PA spectroscopy (ND2PAS) was used to obtain ND2PA spectra and cross-sections. Open aperture (OA) Z-scans and femtosecond transient absorption (TA) spectroscopy were used to characterize excited state absorption (ESA) contributions.
2:Sample Selection and Data Sources:
Chloroform solutions of the chromophores were used. Concentrations were within a range of ca. 1 – 10 μM for steady-state absorption spectroscopy and ca. 1 mM for ND2PAS and TA.
3:List of Experimental Equipment and Materials:
A Shimadzu UV3101-PC dual arm spectrometer for UV-VIS-NIR measurements, a commercial pump-probe system (Helios, Ultrafast Systems) for TA and ND2PAS measurements, and a regeneratively amplified Ti:Sapphire laser system for OA Z-scans.
4:Experimental Procedures and Operational Workflow:
ND2PA and TA spectra were acquired using pump wavelengths of 1300 and 1550 nm. OA Z-scans were performed at 1200 and 1300 nm.
5:Data Analysis Methods:
ND2PA and ESA cross-sections were calculated using MATLAB. Data were processed to correct for solvent background, pump scattering, and probe chirp.
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