Interferometric optical sensors based on porous silicon grafted with styrenic moieties for highly enhanced VOC detection

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY RSC Advances Pub Date : 2025-12-05 DOI:10.1039/D5RA07263H
Van-The Vo, Abhijit. N. Kadam, Thuy-An Nguyen and Sang-Wha Lee
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Abstract

The majority of volatile organic compounds (VOCs) are hazardous pollutants that pose significant risks to human health and the environment. Thus, the development of a smart sensing system for the early identification of VOCs would be in high demand, particularly those enabling rapid detection with high sensitivity and long-term stability. In this study, an interferometric optical sensor was rationally devised through the facile non-atmospheric thermolysis of polystyrene (PS) pre-loaded into a porous silicon (pSi) template prepared via electrochemical anodization. During the thermolysis, styrenic carbon fragments were covalently grafted onto the pore walls of pSi to form a PS-grafted pSi composite (pSi-PS). This composite was subsequently utilized as a scaffold for grafting poly(4-chlorostyrene) (PPCS) via a second thermolysis step, consequently yielding the double-grafted pSi composite (pSi-PS-PPCS). The obtained samples were subsequently employed as an interferometric optical sensor for the sensitive detection of various VOCs, including ethanol, isopropanol, isobutanol, n-hexane, methyl ethyl ketone (M. E. K.), and ethyl acetate. The sensitivity of the optical response to those VOCs exhibited the following order: n-hexane < ethanol < isopropanol < M. E. K. < isobutanol < ethyl acetate. Notably, the double-grafted pSi-PS-PPCS sensor exhibited significantly higher sensitivity than both pristine pSi and single-grafted pSi-PS. The highly enhanced sensitivity of pSi-PS-PPCS, particularly toward isobutanol and ethyl acetate vapors, was mainly attributed to strong intermolecular interactions (such as hydrophobic, hydrogen bonding effects and/or strong interplay of π–π interactions) between the VOC analytes and the chlorine-substituted phenyl moieties of the grafted PPCS.

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基于接枝苯乙烯基团的多孔硅干涉光学传感器用于高增强VOC检测
大多数挥发性有机化合物(VOCs)是有害污染物,对人类健康和环境构成重大风险。因此,开发一种用于VOCs早期识别的智能传感系统将是一个很大的需求,特别是那些能够快速检测、高灵敏度和长期稳定的系统。在本研究中,将聚苯乙烯(PS)预加载到通过电化学阳极氧化制备的多孔硅(pSi)模板中,通过轻松的非大气热分解,合理设计了一种干涉式光学传感器。在热分解过程中,苯乙烯碳片段被共价接枝到pSi的孔壁上,形成ps接枝pSi复合材料(pSi- ps)。该复合材料随后被用作支架,通过第二热裂解步骤接枝聚(4-氯苯乙烯)(PPCS),从而得到双接枝pSi复合材料(pSi- ps -PPCS)。获得的样品随后被用作干涉光学传感器,用于灵敏检测各种挥发性有机化合物,包括乙醇、异丙醇、异丁醇、正己烷、甲基乙基酮(m.e.k.)和乙酸乙酯。光学响应的灵敏度依次为:正己烷;乙醇;异丙醇;m.e.k.;异丁醇;乙酸乙酯。值得注意的是,双接枝pSi- ps - ppcs传感器的灵敏度明显高于原始pSi和单接枝pSi- ps。pSi-PS-PPCS对异丁醇和乙酸乙酯蒸气的敏感性增强,主要是由于VOC分析物与接枝PPCS的氯取代苯基部分之间的分子间相互作用(如疏水、氢键效应和/或π -π相互作用的强相互作用)。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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