采用Z扫描和抽运一探测实验技术,在波长为532 nm、脉冲宽度为41 fs的条件下测得ZnSe晶体的双光子吸收系数,并获得了不同激发光强下的自由载流子吸收截面、电子一空穴带间复合时间和电子-声子耦合时间.研究发现,随着激发光强的增大,自由载流子吸收截面减小,复合时间变短.当激发光强增大导致载流子浓度大于10^18cm^-3时,抽运-探测信号出现明显改变,原因归结为强光场激发导致样品在短时间内带隙变窄和电子-空穴等离子体的形成.
Semiconductor materials exhibiting large optical nonlinearities and ultrafast nonlinear response have received ex-tensive attention because of their potential applications in optical limiting, all-optical devices, optical telecommunication, and so on. As a direct-gap II-VI bulk semiconductor, ZnSe crystal has been exploited as the nonlinear optical devices in the regimes of nanoseconds and picoseconds during the past years. Owing to today’s fast advance of laser sources with ultrashort femtosecond pulse duration, it is possible to investigate the ultrafast optical nonlinearities in the bulk ZnSe crystal. In this paper, we experimentally investigate the ultrafast dynamics of free-carriers induced by two-photon excitation in the bulk ZnSe crystal. By performing open-aperture Z-scan experiments with 41 fs laser pulses at the wavelength of 532 nm under the condition of low excitation intensity, the two-photon absorption coefficient is measured. As the excitation intensity exceeds a critical value, the interplay between third- and fifth-order nonlinear absorption processes is observed. To evaluate the ultrafast dynamics of free carriers, we have carried out femtosecond time-resolved degen-erate pump-probe measurements with the same laser system used for Z-scan experiments in different levels of pump intensities. It is shown that the transient absorption signals peaked at the zero delay is a linearly increasing function of pump intensity, indicating that the observed instantaneous nonlinear absorption is dominated by the interband two-photon absorption process. At moderate irradiance, the transient absorption signals obviously indicate two components, arising from the two-photon absorption-induced free-carrier absorption, which is equivalent to the fifth-order nonlinear absorption process. Under the excitation of relatively high pump intensity, the magnitude of the reduction of free-carrier absorption signal becomes faster, suggesting that the ZnSe crystal exhibits a new effect and causes a transmittance change of th