Chem. J. Chinese Universities ›› 2022, Vol. 43 ›› Issue (1): 20210654.doi: 10.7503/cjcu20210654
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LI Wen1, QIAO Junyi1, LIU Xinyao1,2(), LIU Yunling1(
)
Received:
2021-09-10
Online:
2022-01-10
Published:
2021-10-26
Contact:
LIU Yunling
E-mail:liuxinyao03@sinochem.com;yunling@jlu.edu.cn
Supported by:
CLC Number:
TrendMD:
LI Wen, QIAO Junyi, LIU Xinyao, LIU Yunling. Zirconium-based Metal-Organic Framework with Naphthalene for Fluorescent Detection of Nitroaromatic Explosives in Water[J]. Chem. J. Chinese Universities, 2022, 43(1): 20210654.
Fig.1 Schematic representation of the structure of JLU?MOF100(A) Zr6?cluster; (B) NDBA2- ligand; (C) octahedral cage; (D) tetrahedral cage; (E―G) topological demonstration of octahedral cage(E), tetrahedral cage(F), and fcu topology(G). Color scheme: Zr, green; C, gray; O, red.
Fig.2 PXRD patterns and crystal image(inset) of JLU?MOF100(A), N2 adsorption?desorption isotherm at 77 K and pore size distribution(inset) of JLU?MOF100(B) and fluorescence patterns of H2NDBA, JLU?MOF100, and JLU?MOF100 in water(C)
Fig.3 Fluorescence spectra and SV plots(inset) of quenching titration using JLU?MOF100 towards 1 mmol/L solutions of TNP(A), 2,4?DNP(B), 4?NP(C), 2,4?DNT(D), 4?NT(E) and 3?NT(F)
Fig.4 Fluorescent images of JLU?MOF100 water dispersion before(left) and after(right) the addition of 200 μL of 1 mmol/L TNP aqueous solution(A) and quenching efficiencies towards six nitroaromatics(B)
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