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一种利用非线性光学检测硅衬底上孔雀石绿污染物的新型传感方法。

A Novel Sensing Method to Detect Malachite Green Contaminant on Silicon Substrate Using Nonlinear Optics.

作者信息

Ahyad Muhammad, Hardhienata Hendradi, Hasdeo Eddwi Hesky, Wella Sasfan Arman, Handayasari Faridah, Alatas Husin, Birowosuto Muhammad Danang

机构信息

Theoretical Physics Division, Department of Physics, IPB University, Meranti Avenue, Wing S Building, Dramaga Campus of IPB, Bogor 16680, West Java, Indonesia.

Research Center for Quantum Physics, National Research and Innovation Agency (BRIN), South Tangerang 15314, Banten, Indonesia.

出版信息

Micromachines (Basel). 2024 Sep 30;15(10):1227. doi: 10.3390/mi15101227.

Abstract

We propose a nonlinear-optics-based nanosensor to detect malachite green (MG) contaminants on semiconductor interfaces such as silicon (Si). Applying the simplified bond hyperpolarizability model (SBHM), we simplified the second-harmonic generation (SHG) analysis of an MG-Si(111) surface and were able to validate our model by reproducing experimental rotational anisotropy (RA) SHG experiments. For the first time, density functional theory (DFT) calculations using ultrasoft pseudopotentials were implemented to obtain the molecular configuration and bond vector orientation required by the SBHM to investigate and predict the second-harmonic generation contribution for an MG-Si 001 surface. We show that the SBHM model significantly reduces the number of independent components in the nonlinear tensor of the MG-Si(111) interface, opening up the possibility for real-time and non-destructive contaminant detection at the nanoscale. In addition, we derive an explicit formula for the SHG far field, demonstrating its applicability for various input polarization angles. Finally, an RASHG signal can be enhanced through a simulated photonic crystal cavity up to 4000 times for more sensitivity of detection. Our work can stimulate more exploration using nonlinear optical methods to detect and analyze surface-bound contaminants, which is beneficial for environmental monitoring, especially for mitigating pollution from textile dyes, and underscores the role of nonlinear optics in real-time ambient-condition applications.

摘要

我们提出了一种基于非线性光学的纳米传感器,用于检测硅(Si)等半导体界面上的孔雀石绿(MG)污染物。应用简化键超极化率模型(SBHM),我们简化了MG-Si(111)表面的二次谐波产生(SHG)分析,并通过重现实验旋转各向异性(RA)SHG实验验证了我们的模型。首次使用超软赝势进行密度泛函理论(DFT)计算,以获得SBHM所需的分子构型和键矢量方向,从而研究和预测MG-Si 001表面的二次谐波产生贡献。我们表明,SBHM模型显著减少了MG-Si(111)界面非线性张量中独立分量的数量,为纳米尺度上的实时无损污染物检测开辟了可能性。此外,我们推导了SHG远场的显式公式,证明了其对各种输入偏振角的适用性。最后,通过模拟光子晶体腔,RASHG信号可增强至4000倍,以提高检测灵敏度。我们的工作可以激发更多利用非线性光学方法检测和分析表面结合污染物的探索,这有利于环境监测,特别是减轻纺织染料的污染,并强调了非线性光学在实时环境条件应用中的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55a0/11509378/de2a05796dc5/micromachines-15-01227-g003.jpg

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