全氟辛烷
钴
磺酸盐
氮气
碳纤维
化学
无机化学
环境化学
材料科学
有机化学
复合数
复合材料
钠
作者
Ying Li,Yuwan Lu,Xiaodan Zhang,Haiyan Cao,Yuming Huang
标识
DOI:10.1016/j.microc.2022.107814
摘要
A new CoNCN was fabricated via pyrolysing the mixture of ZIF-L, CoAc 2 , and 1,10-phenanthroline, posessing both Co-N x and metal Co species, rich micro/meso-pores, and oxidase-like and catalase-like activities. PFOS can fade the blue oxTMB, thus, a colorimetric assay was established for the sensitive detection of PFOS. • 2D CoNCN nanozyme was prepared by a simple pyrolysis strategy. • 2D CoNCN shows both oxidase-like and catalase-like activities. • 2D CoNCN as mimetic oxidase can be used for colorimetric detection of PFOS. • The method was successfully used to determine PFOS in real samples. In this study, we used leaf-like zeolitic imidazolate framework (ZIF-L) as the precursor, CoAc 2 ⋅4H 2 O as the Co source, and 1,10-phenanthroline (Phen) as the N source to synthesize the cobalt-embedded nitrogen-carbon nanosheet (CoNCN) with enhanced enzyme-like activity. A variety of characterizations proved that the ultra-thin two-dimensional nanosheet structure of the CoNCN with both micropores and mesopores exposes more Co-N x active sites, which makes it easier for the colorimetric substrate to contact the CoNCN’s surface. Compared with the Co-NC (the synthesized product without using Phen) and NC (the synthesized product without using CoAc 2 ⋅4H 2 O) controls, the optimized CoNCN nanozyme exhibits 2.3-fold and 12.3-fold enhancement of oxidase-like activity, and 1.3-fold and 25.0-fold enhancement of catalase-like activity, respectively. In addition, the CoNCN has a high affinity for TMB, with a K m value of 0.53 mM and a V max value of 3.24 × 10 -7 M s −1 . The mechanism investigation indicated that the • OH, O 2 •− and 1 O 2 were reactive oxygen species responsible for the oxidase-like activity of CoNCN. The perfluorooctane sulfonate (PFOS) can fade the blue oxTMB. Based on this, an analytical method based on a colorimetric strategy coupled to classical univariate calibration was established for the sensitive detection of PFOS, with a linear range of 0.01 to 100 μM, and the limit of detection (LOD) of 20 nM according to modern IUPAC definition. The proposed method was successfully used to determine the concentration of PFOS in actual water samples.
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