Structural, optical, second harmonic, and mechanical studies on zinc chloride added alpha-glycine crystals

P. Justina Angelin, P. Sumithraj Premkumar
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Abstract

The slow evaporation solution method was employed to synthesize and crystallize zinc chloride doped α-glycine (ZCAG) single crystals. The single crystal X-ray diffraction studies of pure α-glycine single crystals revealed that the structure belong to primitive monoclinic lattice. Powder X-ray diffraction studies of ZCAG showed the well-defined sharp peaks and formation of centrosymmetric structure with space group P21/n. The increase in lattice volume of ZCAG suggested that the access of zinc chloride into the α-glycine crystal and the entry of zinc chloride to the α-glycine crystal was also established from the energy-dispersive X-ray analysis. Fourier transform infrared spectrum of ZCAG revealed that the functional groups of α-glycine was not transformed due to the introduction of zinc chloride into the lattice. The optical transparency of ZCAG was observed in the UV–visible region, and it exhibited a superior transmittance in the visible region. Energy bandgap value was determined and found to changes while increasing the dopant concentration. An emission peak was observed in the violet region from the photoluminescence spectra. The centrosymmetric ZCAG exhibited second harmonic generation efficiency of 1.44 times higher than standard potassium dihydrogen phosphate, possibly due to local non-centrosymmetry in the lattice, which is further augmented by lattice distortion induced by the dopant. Low dielectric constant and loss of the grown ZCAG crystals showed the remarkable application of non-linear optical. The Meyer index indicates that the grown ZCAG are categorized as soft materials.

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添加了 alpha-甘氨酸的氯化锌晶体的结构、光学、二次谐波和力学研究
采用缓慢蒸发溶液法合成并结晶了掺杂氯化锌的α-甘氨酸(ZCAG)单晶。纯α-甘氨酸单晶的单晶 X 射线衍射研究表明,其结构属于原始单斜晶格。对 ZCAG 的粉末 X 射线衍射研究表明,ZCAG 具有清晰的尖锐峰,并形成空间群为 P21/n 的中心对称结构。ZCAG 晶格体积的增大表明氯化锌进入了 α 甘氨酸晶体,能量色散 X 射线分析也证实了氯化锌进入了 α 甘氨酸晶体。ZCAG 的傅立叶变换红外光谱显示,α-甘氨酸的官能团并没有因为氯化锌进入晶格而发生转变。在紫外-可见光区观察到了 ZCAG 的光学透明性,在可见光区则表现出优异的透射率。能带隙值的测定结果表明,随着掺杂剂浓度的增加,能带隙值也会发生变化。从光致发光光谱中可以观察到紫光区有一个发射峰。中心对称 ZCAG 的二次谐波发生效率是标准磷酸二氢钾的 1.44 倍,这可能是由于晶格的局部非中心对称性,而掺杂剂引起的晶格畸变又进一步增强了这种非中心对称性。生长出的 ZCAG 晶体介电常数和损耗较低,显示出非线性光学的显著应用。迈耶指数表明生长出的 ZCAG 属于软材料。
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