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Structural Tuning of Energetic Material Bis(1H-tetrazol-5-yl)amine Monohydrate under Pressures Probed by Vibrational Spectroscopy and X-ray Diffraction
被引:4
|作者:
Zhou, Liang
[1
]
Shinde, Nilesh
[1
]
Hu, Anguang
[2
]
Cook, Cyril
[3
]
Murugesu, Muralee
[3
]
Song, Yang
[1
]
机构:
[1] Univ Western Ontario, Dept Chem, London, ON N6A 5B7, Canada
[2] Def Res & Dev Canada Suffield, Medicine Hat, AB T1A 8K6, Canada
[3] Univ Ottawa, Dept Chem, Ottawa, ON K1N 6N5, Canada
来源:
JOURNAL OF PHYSICAL CHEMISTRY C
|
2014年
/
118卷
/
46期
关键词:
NITROGEN-RICH;
RAMAN-SPECTROSCOPY;
HIGH EXPLOSIVES;
POLYMERIZATION;
DERIVATIVES;
STABILITY;
COMPOUND;
D O I:
10.1021/jp507291m
中图分类号:
O64 [物理化学(理论化学)、化学物理学];
学科分类号:
070304 ;
081704 ;
摘要:
As a high-energy density material, bis(1H-tetrazol-5-yl)amine monohydrate (BTA•H2O) was investigated at high pressures up to 25 GPa using in situ Raman spectroscopy, infrared spectroscopy, X-ray diffraction, and ab initio simulations. Upon compression, both the Raman and IR vibrational bands were found to undergo continuous and gradual broadening without significant change of the profile, indicating pressure-induced structural disordering rather than phase transition. X-ray diffraction patterns confirmed the pressure effect on the structural evolutions of BTA•H2O. Upon decompression, the back transformation was observed with almost identical Raman and IR spectra and X-ray pattern of the recovered material, indicating the complete reversibility of the pressure-induced disordering of BTA•H2O and thus the high chemical stability of the aromatic rings in BTA•H2O. Interestingly, in contrast with all of other Raman and IR modes of BTA•H2O, which exhibit blue shifts, the N-H stretching mode shows a prominent red shift upon compression to ∼8 GPa, strongly suggesting pressure-enhanced hydrogen bonding between BTA and H2O. The analysis of X-ray diffraction patterns of BTA•H2O indicates that the unit-cell parameters undergo anisotropic compression rate. The pressure dependence of the unit-cell parameters and volumes coincides with the behavior of the hydrogen-bonding enhancement. Aided with first-principles simulations, these pressure-mediated structural modifications consistently suggest that hydrogen bonding played an important role in the compression behavior and structural stability of BTA•H2O under high pressures. (Figure Presented). © 2014 American Chemical Society.
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页码:26504 / 26512
页数:9
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