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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Nonlinear absorption, nonlinear scattering, and optical limiting properties of MoS2-ZnO composite-based organic glasses
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Nonlinear absorption, nonlinear scattering, and optical limiting properties of MoS2-ZnO composite-based organic glasses

机译:MoS2-ZnO复合基有机玻璃的非线性吸收,非线性散射和光学极限性质

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MoS2-ZnO composites were synthesized using a solution-based method. The scanning electron microscopy and transmission electron microscopy analysis demonstrated that ZnO nanoparticles with a size of about 4.5 nm were coated on the basal surface of MoS2 nanosheets with an expanded spacing of the (002) plane. The MoS2-ZnO composite-based poly(methyl methacrylate) (PMMA) organic glasses (MoS2-ZnO-PMMA organic glasses) were prepared through a polymerization process. The nonlinear absorption (NLA), nonlinear scattering (NLS), and optical limiting (OL) properties of the MoS2-ZnO-PMMA organic glasses with different amounts of MoS2-ZnO were investigated using a modified Z-scan technique. Compared to MoS2-PMMA and ZnO-PMMA organic glasses, the MoS2-ZnO-PMMA organic glasses exhibited enhanced NLA, NLS, and OL properties, which were attributed to the interfacial charge transfer between MoS2 nanosheets and ZnO nanoparticles, the layered structure of MoS2 nanosheets, the small size effect of ZnO nanoparticles, and the local field effect. In addition, a changeover from saturable absorption (SA) to reverse saturable absorption (RSA) could be realized in the MoS2-ZnO-PMMA organic glasses by adjusting the input energy. The total nonlinear extinction coefficient and response time of the MoS2ZnO-PMMA organic glasses could be up to 2380 cm GW(-1) and several hundred picoseconds, respectively. Compared to the MoS2 films, the MoS2-ZnO-PMMA organic glasses have higher optical damage threshold, better mechanical strength and flexibility. Thus the MoS2-ZnO-PMMA organic glasses are very promising for optical devices such as optical limiters, optical shutters, ultrafast lasers, and ultrafast optical switches.
机译:使用基于溶液的方法合成了MoS2-ZnO复合材料。扫描电子显微镜和透射电子显微镜分析表明,尺寸为约4.5nm的ZnO纳米颗粒以(002)面扩大的间隔涂覆在MoS 2纳米片的基面上。通过聚合过程制备了基于MoS2-ZnO复合材料的聚甲基丙烯酸甲酯(PMMA)有机玻璃(MoS2-ZnO-PMMA有机玻璃)。使用改进的Z扫描技术研究了具有不同MoS2-ZnO含量的MoS2-ZnO-PMMA有机玻璃的非线性吸收(NLA),非线性散射(NLS)和光学极限(OL)特性。与MoS2-PMMA和ZnO-PMMA有机玻璃相比,MoS2-ZnO-PMMA有机玻璃具有增强的NLA,NLS和OL性能,这归因于MoS2纳米片与ZnO纳米颗粒之间的界面电荷转移,即MoS2的层状结构纳米片,ZnO纳米粒子的小尺寸效应和局部场效应。此外,通过调节输入能量,可以在MoS2-ZnO-PMMA有机玻璃中实现从饱和吸收(SA)到反向饱和吸收(RSA)的转换。 MoS2ZnO-PMMA有机玻璃的总非线性消光系数和响应时间分别可达2380 cm GW(-1)和几百皮秒。与MoS2薄膜相比,MoS2-ZnO-PMMA有机玻璃具有更高的光学损伤阈值,更好的机械强度和柔韧性。因此,MoS2-ZnO-PMMA有机玻璃非常适合用于光学设备,例如光学限制器,光学百叶窗,超快激光器和超快光学开关。

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