Surface Plasmon-Enhanced Optical Formaldehyde Sensor Based on CdSe@ZnS Quantum Dots.
Sheng XueXiao-Fang JiangGeng ZhangHaiyan WangZongbao LiXiaowen HuMingyu ChenTianci WangAiping LuoHo-Pui HoSailing HeXiaobo XingPublished in: ACS sensors (2020)
For the first time, a reproducible surface plasmon-enhanced optical sensor for the detection of gaseous formaldehyde was proposed, which was fabricated by depositing a mixture of CdSe@ZnS quantum dots (QDs), fumed silica (FS), and gold nanoparticles (GNs) on the surface of a silica sphere array to meet the urgent requirement of a rapid, sensitive, and highly convenient formaldehyde detection method. Because of the spectral overlap between QDs and GNs, plasmon-enhanced fluorescence was observed in the film of QDs/FS/GNs. When exposed to formaldehyde molecules, the enhanced fluorescence was quenched linearly with the increase of formaldehyde concentration in the range of 0.5-2.0 ppm. The reason is attributed to the nonradiative electron transfer from QDs to the carbonyl of formaldehyde molecules with the assistance of amino groups. Our results demonstrate that the designed sensors are capable of detecting ultralow concentration gaseous formaldehyde at room temperature with a fast response-recovery time and excellent selectivity, stability, and reproducibility. This work provides a simple and low-cost approach for optical formaldehyde sensor fabrication and shows promising applications in environmental detection.
Keyphrases
- room temperature
- quantum dots
- energy transfer
- low cost
- loop mediated isothermal amplification
- sensitive detection
- ionic liquid
- gold nanoparticles
- high resolution
- high speed
- label free
- single molecule
- electron transfer
- computed tomography
- magnetic resonance imaging
- magnetic resonance
- high throughput
- mass spectrometry
- climate change