Binish B, Rahulan K Mani, Dhanusha A, Girisun T C Sabari, Laskar Junaid Masud
Nanophotonics Research Laboratory, Department of Physics & Nanotechnology, SRM Institute of Science and Technology Kattankulathur Tamilnadu 603 203 India
Nanophotonics Laboratory, Department of Physics, Bharathidasan University Tiruchirappalli 620 024 India.
RSC Adv. 2022 Sep 23;12(42):27145-27153. doi: 10.1039/d2ra04687c. eCollection 2022 Sep 22.
The emerging demand for the production of nonlinear optical materials with high optical limiting performance has an apparent impact in the field of nonlinear optics owing to their wide application in photonic devices. In this regard, transition metal molybdates have received attention owing to their remarkable optical and luminescence characteristics, leading to their extensive use in next generation optoelectronics devices. Herein, we report the nonlinear optical response of yttrium (Y) doped cadmium molybdate (CdMoO) nanostructures synthesized a co-precipitation technique. The X-ray diffraction and Raman spectroscopy results confirm the formation of CdMoO nanostructures with a tetragonal structure having the I4/ space group. High resolution scanning electron microscopy (HRSEM) of the pristine CdMoO exposed the cubic flat edged nature of the nanostructures and that doping results in particle size reduction due to lattice contraction. X-ray photo electron spectroscopy confirmed the chemical state of the elements present in Ydoped CdMoO. The optical properties of the samples were studied using UV-Vis Spectroscopy and the bandgap was found to increase upon Y doping. The NLO response measured using the open aperture z-scan technique with a Nd: YAG pulsed laser (532 nm, 7 ns, 10 Hz) exhibited a reverse saturable absorption arising from a two photon absorption (2PA) process. An increase in the 2PA coefficient and simultaneous decrease in the onset of the optical limiting threshold clearly suggests the great potential of the yttrium-doped CdMoO nanoparticles for good optical limiting applications.
对具有高光限幅性能的非线性光学材料生产的新需求,因其在光子器件中的广泛应用,在非线性光学领域产生了明显影响。在这方面,过渡金属钼酸盐因其卓越的光学和发光特性而受到关注,这使其在下一代光电器件中得到广泛应用。在此,我们报道了采用共沉淀技术合成的钇(Y)掺杂钼酸镉(CdMoO)纳米结构的非线性光学响应。X射线衍射和拉曼光谱结果证实形成了具有I4/空间群的四方结构的CdMoO纳米结构。原始CdMoO的高分辨率扫描电子显微镜(HRSEM)显示了纳米结构的立方扁平边缘性质,并且掺杂由于晶格收缩导致粒径减小。X射线光电子能谱证实了Y掺杂CdMoO中存在的元素的化学状态。使用紫外可见光谱研究了样品的光学性质,发现掺杂Y后带隙增大。使用Nd:YAG脉冲激光(532 nm,7 ns,10 Hz)通过开孔z扫描技术测量的NLO响应表现出由双光子吸收(2PA)过程引起的反饱和吸收。2PA系数的增加和光限幅阈值起始点的同时降低清楚地表明了钇掺杂CdMoO纳米颗粒在良好光限幅应用方面的巨大潜力。