Lucier, Bryan E. G.; Reidel, Alex R.; Schurko, Robert W. published an article about the compound: cis-Dichlorobis(pyridine)platinum(II)( cas:15227-42-6,SMILESS:[Cl-][Pt+2]([N]1=CC=CC=C1)([Cl-])[N]2=CC=CC=C2 ).Category: tetrahydroisoquinoline. Aromatic heterocyclic compounds can be classified according to the number of heteroatoms or the size of the ring. The authors also want to convey more information about this compound (cas:15227-42-6) through the article.
Multinuclear solid-state NMR (SSNMR) experiments were performed on cisplatin and four related square-planar compounds The wideband uniform rate smooth truncation-Carr-Purcell-Meiboom-Gill (WURST-CPMG) pulse sequence was used in NMR experiments to acquire 195Pt, 14N, and 35Cl ultra-wideline NMR spectra of high quality. Standard Hahn-echo and magic-angle spinning 195Pt NMR experiments are also performed to refine extracted chem. shielding (CS) tensor parameters. Platinum magnetic shielding (MS) tensor orientations are calculated using both plane-wave d. functional theory (DFT) and standard DFT methods. The tensor orientations are highly constrained by mol. symmetry elements, but also influenced to some degree by intermol. interactions. 14N WURST-CPMG experiments were performed on three compounds and elec. field gradient (EFG) parameters (the quadrupolar coupling constant, Cq, and the asymmetry parameter, ηq) are reported. First principles calculations of the 14N EFG tensor parameters and orientations and affirm their dependence on the local hydrogen bonding environment. 35Cl WURST-CPMG experiments on cisplatin and transplatin are reported, using two different static magnetic fields to extract EFG and CS tensor parameters, and 35Cl EFG tensor magnitudes and orientations are predicted using 1st principles calculations Transverse (T2) relaxation data for all nuclei were used to study heteronuclear dipolar relaxation mechanisms, as well as the nature of the local hydrogen bonding environments.
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Tetrahydroisoquinoline – Wikipedia,
1,2,3,4-Tetrahydroisoquinoline | C9H11N – PubChem