A three-dimensional pinwheel-shaped paper-based microfluidic analytical device for fluorescence detection of multiple heavy metals in coastal waters by rational device design.
Milan WangZhihua SongYouwei JiangXiaolin ZhangLin WangHongyu ZhaoYutong CuiFurong GuYunhua WangGuoxia ZhengPublished in: Analytical and bioanalytical chemistry (2021)
Here, we present the rational design of a pinwheel-shaped three-dimensional microfluidic paper-based analytical device (3D-μPAD) for specific, sensitive and multiplexed detection of heavy metals in coastal waters. A more homogeneous permeation of fluids along the chip than common design, even under unskilled performance, has been achieved by the elaborate chip design of the hydrostatic balancing inlet port and uniformly stressed reversible sealing. With the combination of ion imprinted polymer grafted CdTe quantum-dots and fluid accumulation pad, 4 metals (Cu2+, Cd2+, Pb2+, and Hg2+) in 1 analysis and 25-fold enrichment for each metal can be simultaneously performed within 20 min, with detection limits of 0.007-0.015 μg/L. It has the ability to selectively recognize these 4 metals in mixtures and immunizing to interferences from components found in coastal waters, which provided results that were in agreement with values gained from atomic absorption. The inexpensive and portable nature as well as the highly sensitive and flexible performance of the new developed 3D-μPAD could make it attractive as an on-site testing approach for marine environmental monitoring.
Keyphrases
- heavy metals
- health risk assessment
- health risk
- human health
- risk assessment
- label free
- quantum dots
- circulating tumor cells
- high throughput
- loop mediated isothermal amplification
- single cell
- climate change
- real time pcr
- sewage sludge
- fluorescent probe
- ionic liquid
- mass spectrometry
- living cells
- sensitive detection
- molecularly imprinted
- high resolution