Zn/S/TGA 浓度对一锅水合成法合成的 TGA 封顶 ZnS 量子点的稳定性和光学特性的影响

IF 1.7 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Advances in Natural Sciences: Nanoscience and Nanotechnology Pub Date : 2023-11-15 DOI:10.1088/2043-6262/ad095d
Sushma M, Mahaboob Pasha U, Jai Kumar B, H M Mahesh, G Nagaraju
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引用次数: 0

摘要

通过一种简便、经济高效的一锅合成法,在环境中合成了水性 ZnS 量子点(QDs)。为了实现硫代乙醇酸(TGA):锌(Zn):硫化物(S)的最佳比例,采用了光学光谱浓度优化(COOS)方法。X 射线衍射(XRD)光谱证实了 ZnS 量子点(QDs)的锌-蓝晶(立方)相,舍勒法测定 QDs 的平均尺寸为 2 纳米。傅立叶变换红外光谱(FTIR)研究表明,特征峰与 TGA 配体的振动模式一致,证实了封接。与块状 ZnS 吸收峰相比,合成的量子点(QDs)显示出明显的量子约束效应,吸收峰发生蓝移。有趣的是,随着 TGA 浓度的增加,吸收边缘发生了红移,从 300 纳米移至 314 纳米。另一方面,增加阳离子 Zn 的浓度和阴离子 S 的比例会导致吸收边缘的蓝移(从 315 纳米到 295 纳米)和红移(从 280 纳米到 320 纳米)。一个突出的发射峰出现在 428 纳米波长处。应用布鲁斯方程可以估算出量子点(QDs)的尺寸在 2 至 2.7 nm 之间,这与 ZnS 的玻尔半径密切相关。量子点的这一有利特性为其在各种光电设备中的应用提供了可能。
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Effect of Zn/S/TGA concentration on the stability and optical properties of TGA capped ZnS quantum dots synthesized via one pot aqueous synthesis method
Aqueous ZnS quantum dots (QDs) were synthesised via a facile, cost-effective one-pot synthesis method in the ambient environment. To achieve most favourable ratios of thioglycolic acid (TGA):zinc (Zn):sulphide (S), the concentration optimisation by optical spectra (COOS) method was adopted. The x-ray diffraction (XRD) spectra confirmed the zinc-blende (cubic) phase of ZnS quantum dots (QDs), and Scherrer’s method determined that on average, the QDs exhibit a size of 2 nm. The Fourier-transform infrared spectroscopy (FTIR) study shows that characteristic peaks are consistent with the vibrational modes of the TGA ligands, confirming the capping. The quantum dots (QDs) synthesised displayed a significant effect of quantum confinement with blue shift in absorption peaks, compared with bulk ZnS absorption peak. Interestingly, on increasing the concentration of TGA, it resulted in red shift at the absorption edge, shifting from 300 nm to 314 nm. On the other hand, increasing the concentration of cation Zn and anion S ratio led to a blue shift, ranging from 315 to 295 nm, and a red shift, ranging from 280–320 nm, at absorption edges respectively. A prominent emission peak appeared at 428 nm. The application of Brus equation allowed estimating the size of the quantum dots (QDs) to be within the range of 2 to 2.7 nm, which correlated well with the Bohr’s radius of ZnS. This favourable property proposes the use of QDs in various optoelectronic devices.
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Advances in Natural Sciences: Nanoscience and Nanotechnology
Advances in Natural Sciences: Nanoscience and Nanotechnology NANOSCIENCE & NANOTECHNOLOGYMATERIALS SCIE-MATERIALS SCIENCE, MULTIDISCIPLINARY
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