| Literature DB >> 29439399 |
Ying Fu1, Xiao-Xiao Pang2, Zhi-Qiang Wang3, Hai-Tao Qu4, Fei Ye5.
Abstract
A series of novel mono- and di-substituted N-n-butyl-1,8-naphthalimide derivatives were synthesized simultaneously via a three-step reaction. The single crystal structure of N-n-butyl-4-[N',N'-bis(2',4'-dichlorobenzoyl)ethylamino]-1,8-naphthalimide (3f) was determined. The UV-vis and fluorescence properties of compound 3f were investigated. The 3f showed highly selective and sensitive fluorescence changes response towards Pb2+. A titration of monomer with Pb2+ ion was performed. When Pb2+ ion concentration increased from 0 to 10 eq., the fluorescent intensity of 3f decreased from 199.97 to 48.21. The pH effect on 3f showed that it is stable in a wide range of pH. The results indicated that 3f might be a probe molecule for Pb2+.Entities:
Keywords: N-n-Butyl-4-(N′,N′-dihydroxyethylamino)-1,8-naphthalimide; crystal structure; design; fluorescence; synthesis
Mesh:
Substances:
Year: 2018 PMID: 29439399 PMCID: PMC6017435 DOI: 10.3390/molecules23020376
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Design of the novel 1,8-naphthalimide-based chemosensors.
Scheme 2Synthetic route for the production of compounds 3 and 4.
Figure 1Molecular structure of 3f.
Figure 2Packing view of 3f.
Figure 3π-π Stacking interactions between the core planes.
Absorption and fluorescence characteristics of compounds a–f in EtOH/H2O (v/v = 4:1) solution.
| Comp. | Log | ||||
|---|---|---|---|---|---|
| 4.286 | 421.5 | 0.103 | 521 | 0.264 | |
| 3.748 | 419.5 | 0.090 | 529 | 0.245 | |
| 4.100 | 420.0 | 0.035 | 524 | 0.289 | |
| 3.699 | 414.0 | 0.120 | 522 | 0.238 | |
| 4.336 | 417.0 | 0.055 | 527 | 0.238 | |
| 4.017 | 421.5 | 0.118 | 528 | 0.247 | |
| 4.241 | 439.5 | 0.228 | 526 | 0.554 | |
| 4.255 | 439.5 | 0.121 | 524 | 0.596 | |
| 4.233 | 440.5 | 0.054 | 523 | 0.577 | |
| 4.140 | 440.0 | 0.168 | 523 | 0.600 | |
| 4.201 | 440.0 | 0.116 | 522 | 0.579 | |
| 4.212 | 438.5 | 0.098 | 521 | 0.599 |
a Extinction coefficient. b Maximum absorbance (λabs) and emission intensity (λem) wavelengths. c Fluorescence quantum yield (ΦF) were determined by using rhodamine 6G in an EtOH solution. (ΦF = 0.94) as a reference.
Figure 4Various solvents’ influences on the fluorescence intensity.
Figure 5Fluorescence intensity response of probe 3f to different metal cations.
Figure 6Proposed structure of the 3f-Pb2+ complex.
Figure 7UV–vis spectra of probe 3f under the same conditions except for the addition of different amount of Pb2+.
Figure 8Fluorescence spectra of probe 3f under the same conditions except for the addition of different amount of Pb2+.
Figure 9Effect of pH on the fluorescence intensity of 3f in the absence or presence of 3 eq. Pb2+.