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Synthesis opto-electronic characterization and NLO evaluation of 6-methyl 5-nitro Uracil crystal using XRD spectroscopic and theoretical tools

机译:合成光电子表征和使用XRD光谱和理论工具的6-甲基5-硝基尿嘧啶晶体的NLO评价

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摘要

The organic composite crystal for 6-methyl 5-nitro Uracil was grown using slow-evaporation method and the crystal quality was checked by observing the peaks in XRD pattern. The molecular structure of 6-methyl 5-nitro Uracil was used to find crystal parameters for determining NLO activity. The appropriate electronic geometrical structure was keenly noted and the transitional energy exchange was studied and thereby fine-tuning of crystal performance was made by adopting suitable electron-accepting and with-drawing substitutional groups. The crystal parameters; a≠b≠c confirmed the orthorhombic lattice pattern. The space group was found as P21/a and Transparency range was observed as 409–1256 nm. The laser measurements were made and laser Damage threshold was estimated at 10 ns[1.08–3 GW/cm2]. The scattering characteristics of bond networks over the molecule were observed by studying vibrational characteristics of elemental bonds. The hybrid calculations on DFT methods were made using B3LYP/6-311++(D,P) basis set. The chemical shift was observed and retracing chemical potential was identified from the parametric oscillation. The frontier molecular interactions between ground and excited orbital lobe overlapping segments were noted and type of interaction system was identified. The electronic and protonic transfer energy was measured and the origination point of equivalent chemical potential was acknowledged. The NBMO profile was keenly grafted and the transitional energy was measured at every consumed electronic energy band. The vibrational circular dichroic image for all vibrational regions was sketched and the rate of transmission and absorption ratio was verified from peak intensity.
机译:使用慢蒸发法生长6-甲基5-硝基尿嘧啶的有机复合晶体,通过观察XRD图案中的峰来检查晶体质量。使用6-甲基5-硝基尿嘧啶的分子结构来找到用于确定NLO活性的晶体参数。敏锐地注意到适当的电子几何结构,并研究过渡能量交换,从而通过采用合适的电子接受和拉伸的取代基进行微观调整晶体性能。晶体参数; A≠B≠c确认了矫正了矫正器格子图案。发现空间组作为P21 / A和透明范围观察到409-1256nm。制造激光测量值,并估计激光损伤阈值在10ns [1.08-3 gw / cm2]。通过研究元素键的振动特性,观察到分子上粘合网络的散射特性。使用B3LYP / 6-311 ++(D,P)的基础设定进行DFT方法的杂化计算。观察化学转移并从参数振荡中鉴定了缩回化学潜力。注意到接地和激发轨道叶片重叠段之间的前沿分子相互作用,并鉴定了相互作用系统的类型。测量了电子和质子传递能量,并确认了等同的化学潜力的发起点。敏锐地接枝NBMO曲线,在每个消耗的电子能带上测量过渡能量。绘制了所有振动区域的振动圆形二向色图像,并从峰强度验证了透射率和吸收率。

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