TY - JOUR
T1 - O:H–N bond cooperativity in the energetic TATB under mechanical and thermal perturbation
AU - Tong, Zhibo
AU - Sun, Wei
AU - Li, Chongyang
AU - Tang, Zhixu
AU - Huang, Yongli
AU - Yao, Chuang
AU - Zhang, Lei
AU - Sun, Chang Q.
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2022/7/15
Y1 - 2022/7/15
N2 - Incorporating the mechanical and thermal perturbations to the Raman spectroscopy has enabled resolution to the response of the individually segmented C–N[dbnd]2H:2O[dbnd]N–C interactions for the 1,3,5-triamona, 2,4,6-trinitorbenzene (TATB, C6H6N6O6) assembly with “:” representing the electron lone pair of nitrogen or oxygen at the molecular interfaces. It is uncovered that: (i) the N–H bond possesses the negative compressibility and negative thermal expansivity; (ii) the C–(N[dbnd]2H) bond undergoes both compressive and thermal contraction; (iii) the (O,N):H and rest interactions follow the regular compressibility and thermal expansivity. The unusual response of the H–N bond in TATB to perturbation is the same to the H–O segment of the O:H–O bond of water ice and the N:H–O bond of the cyclo-N5−:4H3O+ complexes, which proves that the O:⇔:N repulsion couples the inter-(O:H) and the intramolecular (H–N) interactions and drives the O:H–N to relax cooperatively in the segmental length, energy, and vibration frequency when subjecting to perturbation. Discoveries demonstrate not only the significance of molecular coupling interactions but also the power of mechanical and thermal perturbations that enable detailed information of individual bond relaxation, advancing the engineering in chemistry and devising of functional molecular materials.
AB - Incorporating the mechanical and thermal perturbations to the Raman spectroscopy has enabled resolution to the response of the individually segmented C–N[dbnd]2H:2O[dbnd]N–C interactions for the 1,3,5-triamona, 2,4,6-trinitorbenzene (TATB, C6H6N6O6) assembly with “:” representing the electron lone pair of nitrogen or oxygen at the molecular interfaces. It is uncovered that: (i) the N–H bond possesses the negative compressibility and negative thermal expansivity; (ii) the C–(N[dbnd]2H) bond undergoes both compressive and thermal contraction; (iii) the (O,N):H and rest interactions follow the regular compressibility and thermal expansivity. The unusual response of the H–N bond in TATB to perturbation is the same to the H–O segment of the O:H–O bond of water ice and the N:H–O bond of the cyclo-N5−:4H3O+ complexes, which proves that the O:⇔:N repulsion couples the inter-(O:H) and the intramolecular (H–N) interactions and drives the O:H–N to relax cooperatively in the segmental length, energy, and vibration frequency when subjecting to perturbation. Discoveries demonstrate not only the significance of molecular coupling interactions but also the power of mechanical and thermal perturbations that enable detailed information of individual bond relaxation, advancing the engineering in chemistry and devising of functional molecular materials.
KW - Bond relaxation
KW - Coupling interactions
KW - Hydrogen bond
KW - Molecular crystal
KW - Perturbation
UR - http://www.scopus.com/inward/record.url?scp=85129532714&partnerID=8YFLogxK
U2 - 10.1016/j.molliq.2022.119169
DO - 10.1016/j.molliq.2022.119169
M3 - Article
AN - SCOPUS:85129532714
SN - 0167-7322
VL - 358
JO - Journal of Molecular Liquids
JF - Journal of Molecular Liquids
M1 - 119169
ER -