A Novel Naphthalimide-Rhodamine Fluorescence Sensor: Synthesis, Aggregation-Induced Emission Enhancement and Its Dual-Channel Detection Property
- Corresponding author: Qian Ying, yingqian@seu.edu.cn
Citation:
Sun Jingfu, Qian Ying. A Novel Naphthalimide-Rhodamine Fluorescence Sensor: Synthesis, Aggregation-Induced Emission Enhancement and Its Dual-Channel Detection Property[J]. Chinese Journal of Organic Chemistry,
;2015, 36(1): 151-157.
doi:
10.6023/cjoc201506022
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Insert: the fluorescent intensity trend with different EtOH/H2O content at 608 nm
(a) Hg2+ concentrations 0~45 μmol/L; (b) Liner relationship of fluorescence intensity ratio I472/578 with Hg2+ concentration (4~38 μmol/L); (c) Liner relationship of fluorescence intensity at 472 nm with Hg2+ concentration (10~45 μmol/L); (d) Liner relationship of fluorescence intensity at 578 nm with Hg2+ concentration (10~32 μmol/L)
(a) Cr3+ concentrations 0~600 μmol/L; (b) Liner relationship of fluorescence intensity ratio I472/578 with Cr3+ concentration (150~500 mmol/L); (c) Liner relationship of fluorescence intensity at 472 nm with Cr3+ concentration (100~500 mmol/L); (d) Liner relationship of fluorescence intensity at 578 nm with Cr3+ concentration (40~500 mmol/L).
The changing trend of PL peak intensity of PNRh in various of pH at 474 and 579 nm (a) and the reversible change trend of PL peak intensity of PNRh at pH value of 3 and 10.0 (b)