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贾天卿, Tianqing Jia, *, Motoyoshi Baba, Masayuki Suzuki, Rashid A. Ganeev, Hiroto, Kuroda, Jianrong Qiu, Xinshun Wang, Ruxin Li, and Zhizhan Xu
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-1年11月30日
Two-dimensional periodic nanostructures on ZnO crystal surface were fabricated by two-beam interference of 790 nm femtosecond laser. The long period is, as usually reported, determined by the interference pattern of two laser beams. Surprisingly, there is another short periodic nanostructures with periods of 220-270nm embedding in the long periodic structures. We studied the periods, orientation, and the evolution of the short periodic nanostructures, and found them analogous to the self-organized nanostructures induced by single fs laser beam.
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【期刊论文】ZnSe nanowires grown on the crystal surface by femtosecond laser ablation in air
贾天卿, T.Q. Jiaa, H.X. Chen, M. Huang, X.J. Wu, and F.L. Zhao, M. Baba, M. Suzuki, and H. Kuroda, J.R. Qiu, R.X.Li, and Z.Z. Xu
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-1年11月30日
Uniform ZnSe nanowires are observed on the ablation crater on ZnSe crystal surface irradiated by femtosecond lasers in air, while other parts of the sample surface are not polluted. The nanowire growth rate is about 5μm/s, it is higher than that fabricated by chemical vapor deposition method by a factor of 104. The nanowire length and diameter can be controlled by varying laser pulse energy and pulse number. The formation mechanism is studied and found to be self-catalyzed vapor-liquid-solid process.
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贾天卿, T.Q. Jiaa, F.L. Zhao, M. Huang, and H.X. Chen, J.R. Qiu, R.X. Li, and Z.Z. Xu, H. Kuroda
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-1年11月30日
Nanoripples with periods of 150 and 80 nm are formed on the surface of 6H-SiC crystals irradiated by the p-polarized 800 nm and the s-polarized 400 nm femtosecond lasers, respectively. When both of the two collinear laser beams focus simultaneously on the sample surface, nanoparticles are formed on the whole ablation area, and they array in parallel lines. We propose and confirm that the second harmonics in the sample surface excited by the incident lasers plays an important role in the formation of nanostructures.
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【期刊论文】Ultraviolet-infrared femtosecond laser-induced damage in fused silica and CaF2 crystals
贾天卿, T.Q. Jia, H.X. Chen, M. Huang, and F.L. Zhao, X.X. Li, S.Z. Xu, H.Y. Sun, D.H. Feng, C.B. Li, X.F. Wang, R.X. Li, and Z.Z. Xu, X.K. He and H. Kuroda
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-1年11月30日
The damage in fused silica and CaF2 crystals induced by wavelength tunable femtosecond lasers is studied. The threshold fluence is observed to increase rapidly with laser wavelength λ in the region of 250-800nm, while it is nearly a constant for 800<λ<2000nm. The ultrafast electronic excitation is also studied by a pump and probe method. The reflectivity increases rapidly in the latter half of pump pulse, which supports that impact ionization plays an important role in the generation of conduction band electrons (CBEs). We study the CBEs absorption via subconduction-band sub-CB transition, and develop a coupled avalanche model. Our results indicate that the CBEs absorption via sub-CB transition plays an important role in the damage in dielectrics irradiated by the visible and near ultraviolet femtosecond lasers. Our theory explains well the experiments.
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贾天卿, T.Q. Jiaa, H.Y. Sun, X.X. Li, D.H. Feng, C.B. Li, S.Z. Xu, R.X. Li, and Z.Z. Xu, H. Kuroda
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-1年11月30日
A pump and probe system is developed, where the probe pulse durationγis less than 60 fs while the pump pulse is stretched up to 150-670 fs. The time-resolved excitation processes and damage mechanisms in the omnidirectional reflectors SiO2/TiO2 and ZnS/MgF2 are studied. It is found that as the pump pulse energy is higher than the threshold value, the reflectivity of the probe pulse decreases rapidly during the former half, rather than around the peak of the pump pulse. A coupled dynamic model based on the avalanche ionization (AI) theory is used to study the excitation processes in the sample and its inverse influences on the pump pulse. The results indicate that as pulse duration is longer than 150fs, photoionization (PI) and AI both play important roles in the generation of conduction band electrons (CBEs); the CBE density generated via AI is higher than that via PI by a factor of 102-104. The theory explains well the experimental results about the ultrafast excitation processes and the threshold fluences.
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