Bi Wenjie, Zhu Jinmiao, Zheng Bin, Liu Shantang, Zhang Lilong
School of Chemistry and Pharmaceutical Engineering, Hefei Normal University, Hefei 230601, China.
Institute of Solid-State Physics, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China.
Molecules. 2024 Aug 1;29(15):3650. doi: 10.3390/molecules29153650.
In this study, we successfully synthesized a Pd-doped SnO (Pd-SnO) material with a flower-like hierarchical structure using the solvothermal method. The material's structural proper-ties were characterized employing techniques such as XRD, XPS, FESEM and HRTEM. A gas sensor fabricated from the 2.0 mol% Pd-SnO material demonstrated exceptional sensitivity (R/R = 106) to 100 ppm ethanolamine at an operating temperature of 150 °C, with rapid response/recovery times of 10 s and 12 s, respectively, along with excellent linearity, selectivity, and stability, and a detection limit down to 1 ppm. The superior gas-sensing performance is attributed to the distinctive flower-like hierarchical architecture of the Pd-SnO and the lattice distortions introduced by Pd doping, which substantially boost the material's sensing characteristics. Further analysis using density functional theory (DFT) has revealed that within the Pd-SnO system, Sn exhibits strong affinities for O and N, leading to high adsorption energies for ethanolamine, thus enhancing the system's selectivity and sensitivity to ethanolamine gas. This research introduces a novel approach for the efficient and rapid detection of ethanolamine gas.
在本研究中,我们采用溶剂热法成功合成了具有花状分级结构的钯掺杂二氧化锡(Pd-SnO)材料。利用XRD、XPS、FESEM和HRTEM等技术对该材料的结构特性进行了表征。由2.0 mol% Pd-SnO材料制成的气体传感器在150 °C的工作温度下对100 ppm乙醇胺表现出卓越的灵敏度(R/R = 106),响应/恢复时间分别为10 s和12 s,具有出色的线性度、选择性和稳定性,检测限低至1 ppm。优异的气敏性能归因于Pd-SnO独特的花状分级结构以及钯掺杂引入的晶格畸变,这极大地提升了材料的传感特性。使用密度泛函理论(DFT)的进一步分析表明,在Pd-SnO体系中,Sn对O和N表现出很强的亲和力,导致乙醇胺具有较高的吸附能,从而提高了体系对乙醇胺气体的选择性和灵敏度。本研究为乙醇胺气体的高效快速检测引入了一种新方法。