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Zhi-Min Jin

Publications and source records attributed to Zhi-Min Jin.

8 recordsLinked to original sources

Proton exchanges between phenols and ammonia or amines: a computational study.

Density functional theory calculations at the B3LYP/6-31+G(d,p) level of theory have been performed to explore proton exchanges between phenols and ammonia or amines, which can be used to account for previous NMR experiments. For the parent phenol-NH(3) system, a transition state with a symmetric phenolate-NH(4)(+)-like structure, which lies about 35 kcal mol(-1) in energy above the hydrogen-bonded complex, has been successfully located. An intrinsic reaction coordinate (IRC) analysis indicates that the proton exchange is a concerted process, which can be roughly divided into four continuous subprocesses. A series of para-substituted phenol-NH(3) systems have been considered to investigate the substituent effect. Whereas introduction of an electron-withdrawing group on the phenol appreciably reduces the barrier, an opposite effect is observed for an electron-donating group. Moreover, it has been disclosed that there exists a good linear correlation between the activation barriers and the interaction energies between the phenols and NH(3), indicating the important role of proton transfer (or hydrogen bonding) in determining the proton exchange. Also considered are the proton exchanges between phenol and amines and those for some sterically hindered systems. The results show that the phenol tends to exchange hydrogen with the amines, preferably the secondary amines, and that the steric effect is favorable for the proton exchange, which imply that, as the IRC analysis suggested, besides the proton transfer, the flip of the ammonium-like moiety may play a significant role in the course of proton exchange. For all of these systems, we investigated the solvent effects and found that the barrier heights of proton exchange decrease remarkably as compared to those in a vacuum due to the ion pair feature of the transition state. Finally, we explored the phenol radical cation-NH(3) system; the barrierless proton transfer and remarkably low barrier (5.2 kcal mol(-1)) of proton exchange provide further evidence for the importance of proton transfer in the proton exchange.

Amines↗

Hydrogen bonding and pi-pi interactions in a laminar structure: benzene-1,3-dicarboxylic acid-4-methylpyridine (1/2).

The title complex, C8H6O4.2C6H7N, consists of two crystallographically independent 1:2 clusters of benzene-1,3-dicarboxylic acid and 4-methylpyridine. Each cluster, the components of which are linked by O-H...N hydrogen bonds, is almost planar by alignment of C-H...O hydrogen bonds. Herring-bone ribbons of clusters are formed by other C-H...O hydrogen bonds, and these ribbons are further packed to form a laminar structure by pi-pi interactions.

Crystallography, X-Ray↗

2-Amino-5-methylpyridinium (2-amino-5-methylpyridine)trichlorozincate(II).

The title compound, (C6H9N2)[ZnCl3(C6H8N2)], consists of one 2-amino-5-methylpyridinium cation and one (2-amino-5-methylpyridine)trichlorozincate(II) anion, which are held together by N-H...Cl hydrogen bonds and pi-pi interactions. The cation and the pyridine ligand show similar geometric features, except for the N-C bond lengths. Molecules of the title compound are connected by N-H...Cl hydrogen bonds to form chiral chains; these chains are associated further by C-H...Cl hydrogen bonds to form layers, which are in turn linked by pi-pi interactions.

Crystallography, X-Ray↗

Bis(2-amino-6-methylpyridinium) tetrachlorozincate(II).

The title compound, (C6H9N2)2[Zn(II)Cl4], consists of two 2-amino-6-methylpyridinium (AMP) cations and one [ZnCl4]2- anion, which are held together by N-H...Cl hydrogen bonds. Bond lengths within the AMP cation indicate that the imine tautomer makes a significant contribution to the structure. The molecules are associated by two different pi-pi interactions between identical antiparallel AMP cations, with face-to-face distances of 3.627 (4) and 3.342 (3) A, to form a one-dimensional chain.

Aminopyridines↗

Diazabicyclo[2.2.2]octane-1,4-diium dichromate.

The title compound, (C(6)H(14)N(2))[Cr(2)O(7)], consists of a diazabicyclo[2.2.2]octane-1,4-diium cation and a discrete dichromate anion, which are linked in the crystal by N-H...O hydrogen bonds. The cation is ordered and distorted, owing to the confinement and twist of the hydrogen bonds involved. Two CrO(4) tetrahedra are joined through a shared O atom to form the dichromate anion. Chiral supramolecular chains of the title compound are built up via N-H...O hydrogen bonds, and C-H...O interactions play subordinate roles in forming the structure.

Journal Article↗

Diethyl 3,8-dimethyl-4,7-diazadeca-2,8-dienedioate.

The title compound, C14H24N2O4, consists of two symmetric moieties related through a twofold axis. The whole molecule has a cis conformation. Both the ionic enol form and the non-ionic keto form make comparable contributions to the structure. In the crystal structure, infinite supramolecular chains are formed through N-H...O hydrogen bonds.

Journal Article↗

1,4-Diazabicyclo[2.2.2]octane-1,4-diium trichromate.

The title compound, (C(6)H(14)N(2))[Cr(3)O(10)], consists of a diazabicyclo[2.2.2]octane-1,4-diium cation and a discrete trichromate anion linked by an N-H.O hydrogen bond. Three CrO(4) tetrahedra are joined via shared O atoms to form the trichromate anion. Supramolecular rings, which can be described by the graph-set motif R(4)(4)(26), are built via N-H.O hydrogen bonds, and C-H.O interactions play lesser roles in forming the structure.

Journal Article↗