Third-Order Nonlinear Optical Response near the Plasmon Resonance Band of Cu_(2-x)Se Nanocrystals

来源 :Chinese Physics Letters | 被引量 : 0次 | 上传用户:freebernie
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The third-order nonlinear optical properties of water-soluble Cu_(2-x)Se nanocrystals are studied in the near infrared range of 700-980 nm using a femtosecond pulsed laser by the Z-scan technique. It is observed that the nonlinear optical response of Cu_(2-x)Se nanocrystals is sensitively dependent on the excitation wavelength and exhibits the enhanced nonlinearity compared with other selenides such as ZnSe and CdSe. The W-shaped Z-scan trace, a mixture of the reversed saturated absorption and saturated absorption, is observed near the plasmon resonance band of Cu_(2-x)Se nanocrystals, which is attributed to the state-filling of free carriers generated by copper vacancies(self-doping effect) of Cu_(2-x)Se nanocrystals as well as the hot carrier thermal effect upon intense femtosecond laser excitation. The large nonlinear optical response and tunable plasmonic band make Cu_(2-x)Se nanocrystals promising materials for applications in ultra-fast all-optical switching devices as well as nonlinear nanosensors. The third-order nonlinear optical properties of water-soluble Cu 2- (2-x) Se nanocrystals were studied in the near infrared range of 700-980 nm using a femtosecond pulsed laser by the Z-scan technique. It is observed that the nonlinear optical response of Cu_ (2-x) Se nanocrystals is sensitively dependent on the excitation wavelength and exhibits the enhanced nonlinearity compared with other selenides such as ZnSe and CdSe. The W-shaped Z-scan trace, a mixture of the absorption, is observed near the plasmon resonance band of Cu 2- (2-x) Se nanocrystals, which is attributed to the state-filling of free carriers generated by copper vacancies (self-doping effect) of Cu 2- The large nonlinear optical response and tunable plasmonic band make Cu_ (2-x) Se nanocrystals promising materials for applications in ultra-fast all-optical switching devices as well as no nlinear nanosensors.
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