Most of the compounds have physiologically active properties, and their biological properties are often attributed to the heteroatoms contained in their molecules, and most of these heteroatoms also appear in cyclic structures. A Journal, Article, Research Support, Non-U.S. Gov’t, Chemistry – A European Journal called Can Non-Kramers TmIII Mononuclear Molecules be Single-Molecule Magnets (SMMs)?, Author is Meng, Yin-Shan; Qiao, Yu-Sen; Zhang, Yi-Quan; Jiang, Shang-Da; Meng, Zhao-Sha; Wang, Bing-Wu; Wang, Zhe-Ming; Gao, Song, which mentions a compound: 18583-60-3, SMILESS is [BH-](N1N=CC=C1)(N2N=CC=C2)N3N=CC=C3.[K+], Molecular C9H10BKN6, Safety of Potassiumtris(1-pyrazolyl)borohydride.
In recent years, plentiful lanthanide-based (TbIII, DyIII, and ErIII) single-mol. magnets (SMMs) were studied, while examples of other lanthanides, for example, TmIII are still unknown. The authors show that by rationally manipulating the coordination sphere, two thulium compounds, 1[(Tp)Tm(COT)] and 2[(Tp*)Tm(COT)] (Tp=hydrotris(1-pyrazolyl)borate; COT=cyclooctatetraenide; Tp*=hydrotris(3,5-dimethyl-1-pyrazolyl)borate), can adopt the structure of non-Kramers SMMs and exhibit their behaviors. Dynamic magnetic studies indicated that both compounds showed slow magnetic relaxation under dc field and a relatively high effective energy barrier (111 K for 1, 46 K for 2). Magnetic diluted 1 a[(Tp)Tm0.05Y0.95(COT)] and 2 a[(Tp*)Tm0.05Y0.95(COT)] even exhibited magnetic relaxation under zero dc field. Relativistic ab initio calculations combined with single-crystal angular-resolved magnetometry measurements revealed the strong easy axis anisotropy and nearly degenerated ground doublet states. The comparison of 1 and 2 highlights the importance of local symmetry for obtaining Tm SMMs.
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Reference:
Piperazine – Wikipedia,
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