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用于增强对氯仿蒸汽传感灵敏度和选择性的碳点修饰中空介孔光子晶体材料

Carbon Dots-Modified Hollow Mesoporous Photonic Crystal Materials for Sensitivity- and Selectivity-Enhanced Sensing of Chloroform Vapor.

作者信息

Liu Junchen, Liu Ji, Li Zhipeng, Zhao Liupeng, Wang Tianshuang, Yan Xu, Liu Fangmeng, Li Xiaomin, Li Qin, Sun Peng, Lu Geyu, Zhao Dongyuan

机构信息

State Laboratory On Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun, 130012, People's Republic of China.

Department of Chemistry and Laboratory of Advanced Materials, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Molecular Engineering of Polymers, Collaborative Innovation Center of Chemistry for Energy Materials (2011-iChEM), College of Chemistry and Materials, Fudan University, Shanghai, People's Republic of China.

出版信息

Nanomicro Lett. 2024 Dec 26;17(1):96. doi: 10.1007/s40820-024-01598-9.

Abstract

Chloroform and other volatile organic pollutants have garnered widespread attention from the public and researchers, because of their potential harm to the respiratory system, nervous system, skin, and eyes. However, research on chloroform vapor sensing is still in its early stages, primarily due to the lack of specific recognition motif. Here we report a mesoporous photonic crystal sensor incorporating carbon dots-based nanoreceptor (HMSS@CDs-PCs) for enhanced chloroform sensing. The colloidal PC packed with hollow mesoporous silica spheres provides an interconnected ordered macro-meso-hierarchical porous structure, ideal for rapid gas sensing utilizing the photonic bandgap shift as the readout signal. The as-synthesized CDs with pyridinic-N-oxide functional groups adsorbed in the hollow mesoporous silica spheres are found to not only serve as the chloroform adsorption sites, but also a molecular glue that prevents crack formation in the colloidal PC. The sensitivity of HMSS@CDs-PCs sensor is 0.79 nm ppm and an impressively low limit of detection is 3.22 ppm, which are the best reported values in fast-response chloroform vapor sensor without multi-signal assistance. The positive response time is 7.5 s and the negative response time 9 s. Furthermore, relatively stable sensing can be maintained within a relative humidity of 20%-85%RH and temperature of 25-55 °C. This study demonstrates that HMSS@CDs-PCs sensors have practical application potential in indoor and outdoor chloroform vapor detection.

摘要

氯仿和其他挥发性有机污染物因其对呼吸系统、神经系统、皮肤和眼睛的潜在危害而受到公众和研究人员的广泛关注。然而,由于缺乏特异性识别基序,氯仿气敏传感的研究仍处于早期阶段。在此,我们报道了一种基于碳点纳米受体的介孔光子晶体传感器(HMSS@CDs-PCs),用于增强氯仿传感。填充有中空介孔二氧化硅球的胶体光子晶体提供了一种相互连接的有序宏观-介观-分级多孔结构,非常适合利用光子带隙移动作为读出信号进行快速气敏传感。发现在中空介孔二氧化硅球中吸附的具有吡啶氮氧化物官能团的合成碳点不仅作为氯仿吸附位点,而且作为防止胶体光子晶体中形成裂纹的分子胶。HMSS@CDs-PCs传感器的灵敏度为0.79 nm/ppm,检测限低至3.22 ppm,这是无多信号辅助的快速响应氯仿蒸汽传感器中报道的最佳值。正响应时间为7.5秒,负响应时间为9秒。此外,在20%-85%RH的相对湿度和25-55°C的温度范围内可以保持相对稳定的传感。本研究表明,HMSS@CDs-PCs传感器在室内外氯仿蒸汽检测中具有实际应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c7a/11671676/7a23e2dd22e0/40820_2024_1598_Fig1_HTML.jpg

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