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We present a four-state model for calculating the two-photon absorption of multi-branched molecules by using the time-depended function method, The numerical results indicate that the two-photon absorption cross section has a strong enhancement for three-branch molecules compared to two-branch structures, The maximal two-photon-absorption cross section is 2.358 × 10^-47 cm^4s/photon, At the same time, the charge-transfer process for the charge-transfer states is visualized in order to explain mechanism about the maximal TPA cross section. 相似文献
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Nd:GdVO_4热常数的测量和激光性能研究 总被引:2,自引:0,他引:2
中频感应加热提拉法生长了低钕掺杂的GdVO_4晶体,用机械分析仪来测量Nd:GdVO_4晶体的热膨胀系数,沿c方向的热膨胀系数为7.42×10~(-6)/K,而沿α方向的热膨胀系数只有1.05×10~(-6)/K,比同比Nd_(0.0045)Y_(0.9946)VO_4晶体样品测量结果小。差示扫描热计法测量了Nd:GdVO_4晶体的比热,298K时为0.52J/g·K。首次用激光脉冲法测量了Nd:GdVO_4晶体的室温热导率。实验表明,Nd:GdVO_4晶体沿<001>方向的热导率数值达11.4W/m·K,比Nd:YAG晶体高(测得10.7W/m·K),其<100>方向的热导率为10.1W/m·K。激光实验显示在较高功率泵浦激光输出上Nd:GdVO_4晶体具有比Nd:YVO_4晶体更加优良的性能。 相似文献
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Nd∶GdVO4热常数的测量和激光性能研究 总被引:1,自引:0,他引:1
中频感应加热提拉法生长了低钕掺杂的GdVO4晶体,用机械分析仪来测量Nd∶GdVO4晶体的热膨胀系数, 沿c方向的热膨胀系数为7.42×10-6/K,而沿a方向的热膨胀系数只有1.05×10-6/K,比同比Nd0.0054Y0.9946VO4晶体样品测量结果小.差示扫描热计法测量了Nd∶GdVO4晶体的比热, 298K时为0.52J/g*K.首次用激光脉冲法测量了Nd∶GdVO4晶体的室温热导率.实验表明,Nd∶GdVO4晶体沿<001>方向的热导率数值达11.4W/m*K, 比Nd∶YAG晶体高(测得10.7W/m*K),其<100>方向的热导率为10.1W/m*K.激光实验显示在较高功率泵浦激光输出上Nd∶GdVO4晶体具有比Nd∶YVO4晶体更加优良的性能. 相似文献
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分别测量了 Er∶ YCOB晶体和 Er∶Yb∶YCOB晶体的室温吸收光谱。讨论了 Yb3 +离子对 Er3 +离子的敏化作用 相似文献
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Based on non-equilibrium Green's function formalism and density functional theory calculations, we investigate the electronic transport properties of 15,16dinitrile dihydropyrene/cyclophanediene bridged between two zigzag graphene nanoribbon electrodes. Our results demonstrate that the system can exhibit good switching behavior with the maximum on-off ratio high up to 146 which is improved dramatically compared with the case of gold electrodes. Moreover, an obvious negative differential resistance behavior occurs at 0.3 V, making the system have more potential in near future molecular circuits. 相似文献
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