Crystal Growth, Optical, Thermal, DFT and Z-Scan Studies of Imidazolium Hydrogen Fumarate Crystal for Nonlinear Optical Applications

IF 1.5 4区 材料科学 Q3 Chemistry
Elavarasi Chinnakannu, Mugundan Sankar, Senthilkumar Chandran, Keerthivasan Thamotharan, Srinivasan Manickam
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Abstract

Organic imidazolium hydrogen fumarate (IHF) crystals are grown using the slow evaporation method. The IHF has triclinic crystal structure. The 1H NMR spectrum has five chemical shifts for the IHF crystal. The band at 3155 cm−1 in IR occurs due to the presence of O─H stretching vibration of the IHF molecule. The bandgap value of the IHF crystal is determined to be 4.6 eV. The intense violet emission band is noted at 361 nm. The IHF crystal has thermal stability value of 179 °C. Hirshfeld surface is used to find out the different intermolecular interactions of the IHF crystal. The HOMO–LUMO energy gap is determined to be 4.70 eV. The hydrogen atoms have positive potential in the MEP analysis. The high stabilization energy of 56.81 kcal mol−1 is noticed for π*(C1─N7) → π*(C2─C3) interaction. The third-order NLO susceptibility (χ(3)) of the IHF is 2.08934 × 10−9 esu.

Abstract Image

用于非线性光学应用的富马酸咪唑鎓晶体的晶体生长、光学、热学、DFT 和 Z 扫描研究
有机咪唑富马酸氢盐(IHF)晶体是利用缓慢蒸发法生长出来的。IHF 具有三菱晶体结构。IHF 晶体的 1H NMR 光谱有五个化学位移。红外光谱中 3155 cm-1 处的波段是由于 IHF 分子中存在 O─H 伸展振动。IHF 晶体的带隙值被测定为 4.6 eV。在 361 纳米波长处有强烈的紫色发射带。IHF 晶体的热稳定性值为 179 °C。Hirshfeld 表面用于找出 IHF 晶体的不同分子间相互作用。HOMO-LUMO 能隙被测定为 4.70 eV。在 MEP 分析中,氢原子具有正电势。π*(C1─N7)→π*(C2─C3)相互作用的稳定能量高达 56.81 kcal mol-1。IHF 的三阶 NLO 易感性(χ(3))为 2.08934 × 10-9 esu。
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来源期刊
CiteScore
2.50
自引率
6.70%
发文量
121
审稿时长
1.9 months
期刊介绍: The journal Crystal Research and Technology is a pure online Journal (since 2012). Crystal Research and Technology is an international journal examining all aspects of research within experimental, industrial, and theoretical crystallography. The journal covers the relevant aspects of -crystal growth techniques and phenomena (including bulk growth, thin films) -modern crystalline materials (e.g. smart materials, nanocrystals, quasicrystals, liquid crystals) -industrial crystallisation -application of crystals in materials science, electronics, data storage, and optics -experimental, simulation and theoretical studies of the structural properties of crystals -crystallographic computing
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