| Literature DB >> 24572725 |
Fei Liu1, Xiaoshu Mo2, Haibo Gan2, Tongyi Guo2, Xuebin Wang3, Bin Chen4, Jun Chen2, Shaozhi Deng2, Ningsheng Xu2, Takashi Sekiguchi4, Dmitri Golberg5, Yoshio Bando3.
Abstract
As one of the most important two-dimensional (2D) materials, BN nanosheets attracted intensive interest in the past decade. Although there are many methods suitable for the preparation of BN sheets, finding a cheap and nontoxic way for their mass and high-quality production is still a challenge. Here we provide a highly effective and cheap way to synthesize gram-scale-level well-structured BN nanosheets from many common graphite products as source materials. Single-crystalline multi-layered BN sheets have a mean lateral size of several hundred nanometers and a thickness ranging from 5 nm to 40 nm. Cathodoluminescence (CL) analysis shows that the structures exhibit a near band-edge emission and a broad emission band from 300 nm to 500 nm. Utilization of nanosheets for the reinforcement of polymers revealed that the Young's modulus of BN/PMMA composite had increased to 1.56 GPa when the BN's fraction was only 2 wt.%, thus demonstrating a 20% gain compared to a blank PMMA film. It suggests that the BN nanosheet is an ideal mechanical reinforcing material for polymers. In addition, this easy and nontoxic substitution method may provide a universal route towards high yields of other 2D materials.Entities:
Year: 2014 PMID: 24572725 PMCID: PMC3936228 DOI: 10.1038/srep04211
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Table showing the growth conditions and morphology of BN sheets using different carbon sources
| Source Materials | Growth temperature (°C) | Morphology | Size (nm) | Thickness (nm) | Product mass (g) | Product yield |
|---|---|---|---|---|---|---|
| B2O3:graphite micropowders = 3.5 g:0.7 g | 1300–1600 | Uniform sheets | 300–900 | 5–40 | 0.65–1.1 | 15–26% |
| B2O3:graphite rod powders = 3.5 g:0.7 g | 1300–1600 | Uniform sheets | 1000–2000 | 20–80 | 0.65–1.1 | 15–26% |
| B2O3:activated carbon powders = 3.5 g:0.7 g | 1300–1600 | Uniform sheets | 500–1000 | 10–50 | 0.65–1.1 | 15–26% |
| B2O3:amorphous carbon nanopowders = 3.5 g:0.7 g | 1300–1600 | Uniform sheets | 300–800 | 5–30 | 0.65–1.1 | 15–26% |
| B2O3:MWCNTs | 1300–1600 | Uniform sheets | 200–700 | 5–30 | 0.6–1.0 | 15–26% |
| B2O3:DWCNTs | 1300–1600 | Uniform sheets | 100–500 | 5–20 | 0.6–1.0 | 15–26% |
| B2O3:SWCNTs | 1300–1600 | Uniform sheets | 100–500 | 5–20 | 0.6–1.0 | 15–26% |
*The product yield is calculated with respect to the staring precursors mass.
**Multi-walled carbon nanotubes.
***Double-walled carbon nanotubes.
****Single-walled carbon nanotubes.
Figure 1(A) A photograph of the BN sheets prepared in gram scale. (B, C) Low- and high-magnification SEM images of the BN sheets. (D) Top view of the BN sheets.
Figure 2(A) Typical XRD pattern of the BN sheets. (B) Corresponding Raman spectrum.
Figure 3(A, B) Low resolution TEM images of the BN sheets at different magnifications. The inset is the SAED pattern. (C, D) High resolution TEM images of the edge and the central regions of the BN sheet. (E) Statistics diagram of the BN sheets' thickness distribution. (F) Typical EEL spectrum of the BN sheet.
Figure 4Representative CL spectrum of the BN sheets.
Figure 5(A) Polychromatic CL image of the BN sheets. (B–F) Monochromatic CL images of the BN sheets at 218 nm, 228 nm, 308 nm, 386 nm and 442 nm wavelength illuminations. From the right to the left, three regions referred by the white circles are respectively named as region 1, region 2 and region 3.
Figure 6(A) Photographs of the BN/PMMA composite film at (a) 0 wt.% BN; (b) 1 wt.% BN; (c) 2 wt. % BN; (d) 5 wt.% BN; (e) 10 wt.% BN. (B) Stress-strain curves of the BN/PMMA composite films with different BN filling fractions. (C, D) Elastic modulus versus BN filling fraction curve and tensile strength versus BN filling fraction curve of the composite film, respectively. (E) The curves of the modulus reinforcing ratio of the composite film to the BN filling fraction for the BN sheets prepared by different methods.