| Literature DB >> 27334409 |
Till T Meiling1, Piotr J Cywiński2,3, Ilko Bald1,4.
Abstract
In this study, a new reliable, economic, and environmentally-friendly one-step synthesis is established to obtain carbon nanodots (CNDs) with well-defined and reproducible photoluminescence (PL) properties via the microwave-assisted hydrothermal treatment of starch and Tris-acetate-EDTA (TAE) buffer as carbon sources. Three kinds of CNDs are prepared using different sets of above mentioned starting materials. The as-synthesized CNDs: C-CND (starch only), N-CND 1 (starch in TAE) and N-CND 2 (TAE only) exhibit highly homogenous PL and are ready to use without need for further purification. The CNDs are stable over a long period of time (>1 year) either in solution or as freeze-dried powder. Depending on starting material, CNDs with PL quantum yield (PLQY) ranging from less than 1% up to 28% are obtained. The influence of the precursor concentration, reaction time and type of additives on the optical properties (UV-Vis absorption, PL emission spectrum and PLQY) is carefully investigated, providing insight into the chemical processes that occur during CND formation. Remarkably, upon freeze-drying the initially brown CND-solution turns into a non-fluorescent white/slightly brown powder which recovers PL in aqueous solution and can potentially be applied as fluorescent marker in bio-imaging, as a reduction agent or as a photocatalyst.Entities:
Year: 2016 PMID: 27334409 PMCID: PMC4917870 DOI: 10.1038/srep28557
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(A) The preparation of starch-derived fluorescent C-CNDs and N-CNDs. (B) Starting materials: (a) starch, (b) TAE-buffer 10X, (c) water and (d) C-CND and (e) N-CND 1 under UV-light (312 nm). A comparison between N-CND 1 emission in solution (C) and as dried powder (D) under white light (I; III) and under 312 nm UV-light (II; IV), respectively.
Figure 2Effect of reaction time on the optical properties of C-CNDs: (A) UV-Vis absorption spectra; (B) Absorbance at six selected wavelengths as a function of reaction time; (C) PL emission spectra for different reaction times under excitation at 340 nm (OD 0.1), the inset is the PL Intensity as a function of reaction time; and (D) their corresponding normalized PL emission spectra.
Figure 3Effect of different N-additive combinations on the (A) PL emission spectra (Exc. 340 nm) of samples prepared at 45 min and 230 °C normalized to PLQY. Effect of reaction temperature on N-CNDs prepared from TAE-buffer 10X (EDTA + Tris) using a reaction time of 45 min, (B) UV-Vis absorption spectra, and the inset is the absorbance at six selected wavelength as a function of reaction temperature; and (C) PLQY at 340 nm. (D) FTIR spectra of the as-synthesized carbon nanodots (CND) and nitrogen-doped carbon nanodots (N-CND). TAE-buffer: Tris-acetate-EDTA buffer, EDTA: ethylenediaminetetraacetic acid, Tris: tris(hydroxymethyl)aminomethane.
The results of PL emission and PLQY for five different N-additive combinations, including N-CNDs.
| Pure EDTA | Pure Tris | EDTA + starch | Tris + starch | Starch in TAE 10X N-CND 1 | TAE 10X N-CND 2 | TAE 50X N-CND 2 | |
|---|---|---|---|---|---|---|---|
| PL emission [nm] | 408 | 408 | 429 | 425 | 419 | 419 | 419 |
| PLQY [%] | 1 | 6 | 2 | 6 | 17 | 19 | 28 |
| EDTA content [mg/mL] | 2.93 | – | 2.93 | – | 2.93 | 2.93 | 2.93 |
| Tris content [mg/mL] | – | 48.5 | – | 48.5 | 48.5 | 48.5 | 242.5 |
| Starch content [mg/mL] | – | – | 48.5 | 48.5 | 0.14 | – | – |
TAE-buffer: Tris-acetate-EDTA buffer, EDTA: ethylenediamine-tetraacetic acid, Tris: tris(hydroxymethyl)aminomethane; TAE 10X contains: acetic acid (200 mM), EDTA (10 mM) and Tris (400 mM).