| Literature DB >> 26282881 |
Hang Lv1, Mingguang Yao2, Quanjun Li2, Ran Liu2, Bo Liu2, Zhen Yao2, Dedi Liu2, Zhaodong Liu2, Jing Liu3, Zhiqiang Chen4, Bo Zou2, Tian Cui2, Bingbing Liu2.
Abstract
We present an experimental study of a new hybrid material where nitrogen is encapsulated in the channels of porous zeolite AlPO4-5 (AFI) single crystals by a high-pressure method. The high-pressure behavior of nitrogen confined inside the AFI nano-channels is then investigated by Raman spectroscopy up to 44 GPa. Under pressure, the Raman modes of confined nitrogen show behaviors different from those of the bulk nitrogen. After the return to atmospheric pressure, it is demonstrated that non-gaseous nitrogen can be effectively stabilized by being confined inside the intact AFI sample. This result provides new insight into nitrogen capture and storage technologies.Entities:
Year: 2015 PMID: 26282881 PMCID: PMC4539611 DOI: 10.1038/srep13234
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1SEM images of the AFI crystals.
The inset shows the corresponding XRD spectrum.
Figure 2High-pressure Raman spectra of (a) nitrogen in the confined system and (b) bulk nitrogen.
The inset shows an optical image of the AFI sample in the confined system at 22.8 GPa.
Pressure coefficients of Raman shift for confined nitrogen and bulk nitrogen.
| 0.2–2.4 | 3.3 | 2.5 (liquid-N2) |
| 2.6–5 | 2.9 | 3.1 ( |
| 5.4–12.9 | 1.9 | 2.2 ( |
| 15.5–33 | 1.1 | 1.5 ( |
Figure 3High-pressure Raman spectra of nitrogen in the intact AFI confined system.
The inset shows an optical image of the intact AFI sample in the diamond anvil cell.
Figure 4Raman spectrum of the sample: nitrogen confined inside the AFI channels after releasing the pressure to 0 GPa
.
Figure 5Pressure dependence of Raman spectra of nitrogen confined in AFI and bulk nitrogen.
The red arrow marks the nitrogen confined in AFI at 0 GPa.