Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education, College of Pharmaceutical Sciences, Southwest University, Chongqing, 400715, China.
Chongqing Key Laboratory of Luminescent and Real-Time Analysis System, Chongqing Science and Technology Commission, College of Chemistry and Chemical Engineering, Southwest University, Beibei, Chongqing, 400715, China.
Talanta. 2023 Aug 15;261:124663. doi: 10.1016/j.talanta.2023.124663. Epub 2023 May 16.
The development of new efficient contrast nanoprobe has been greatly concerned in the field of scattering imaging for sensitive and accurate detection of trace analytes. In this work, the non-stoichiometric CuSe nanoparticle with typical localized surface plasmon resonance (LSPR) properties originating from their copper deficiency as a plasmonic scattering imaging probe was developed for sensitive and selective detection of Hg under dark-field microscopy. Hg can compete with Cu(I)/Cu(II) which were sources of optically active holes coexisting in these CuSe nanoparticles for its higher affinity with Se. The plasmonic properties of CuSe were adjusted effectively. Thus, the color scattering images of CuSe nanoparticles was changed from blue to cyan, and the scattering intensity was obviously enhanced with the dark-field microscopy. There was a linear relationship between the scattering intensity enhancement and the Hg concentration in the range of 10-300 nM with a low detection limit of 1.07 nM. The proposed method has good potential for Hg detection in the actual water samples. This work provides a new perspective on applying new plasmonic imaging probe for the reliable determination of trace heavy metal substances in the environment at a single particle level.
新型高效对比纳米探针的发展在散射成像领域受到了极大的关注,因为它可以敏感、准确地检测痕量分析物。在这项工作中,开发了具有典型局域表面等离子体共振(LSPR)性质的非化学计量比 CuSe 纳米粒子作为等离子体散射成像探针,用于在暗场显微镜下对 Hg 进行灵敏和选择性检测。Hg 可以与 Cu(I)/Cu(II)竞争,因为它们是共存于这些 CuSe 纳米粒子中的光学活性空穴的来源,Hg 与 Se 的亲和力更高。CuSe 的等离子体性质得到了有效调节。因此,CuSe 纳米粒子的颜色散射图像从蓝色变为青色,并且散射强度随着暗场显微镜的增强而明显增强。在 10-300 nM 的范围内,散射强度增强与 Hg 浓度之间存在线性关系,检测限低至 1.07 nM。该方法在实际水样中的 Hg 检测具有良好的应用前景。这项工作为在单颗粒水平上应用新型等离子体成像探针可靠地测定环境中痕量重金属物质提供了新的视角。