首页> 美国卫生研究院文献>Wiley-Blackwell Online Open >Synthesis and Isolation of the Titanium–Scandium Endohedral Fullerenes—Sc2TiC@Ih‐C80 Sc2TiC@D5h‐C80 and Sc2TiC2@Ih‐C80: Metal Size Tuning of the TiIV/TiIII Redox Potentials
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Synthesis and Isolation of the Titanium–Scandium Endohedral Fullerenes—Sc2TiC@Ih‐C80 Sc2TiC@D5h‐C80 and Sc2TiC2@Ih‐C80: Metal Size Tuning of the TiIV/TiIII Redox Potentials

机译:钛-Scan内表面富勒烯-Sc2TiC @ Ih-C80Sc2TiC @ D的合成与分离5h-C80和Sc2TiC2 @ Ih-C80:TiIV / TiIII氧化还原电位的金属尺寸调整

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摘要

The formation of endohedral metallofullerenes (EMFs) in an electric arc is reported for the mixed‐metal Sc–Ti system utilizing methane as a reactive gas. Comparison of these results with those from the Sc/CH4 and Ti/CH4 systems as well as syntheses without methane revealed a strong mutual influence of all key components on the product distribution. Whereas a methane atmosphere alone suppresses the formation of empty cage fullerenes, the Ti/CH4 system forms mainly empty cage fullerenes. In contrast, the main fullerene products in the Sc/CH4 system are Sc4C2@C80 (the most abundant EMF from this synthesis), Sc3C2@C80, isomers of Sc2C2@C82, and the family Sc2C2 n (2 n=74, 76, 82, 86, 90, etc.), as well as Sc3CH@C80. The Sc–Ti/CH4 system produces the mixed‐metal Sc2TiC@C2 n (2 n=68, 78, 80) and Sc2TiC2@C2 n (2 n=80) clusterfullerene families. The molecular structures of the new, transition‐metal‐containing endohedral fullerenes, Sc2TiC@Ih‐C80, Sc2TiC@D 5h‐C80, and Sc2TiC2@Ih‐C80, were characterized by NMR spectroscopy. The structure of Sc2TiC@Ih‐C80 was also determined by single‐crystal X‐ray diffraction, which demonstrated the presence of a short Ti=C double bond. Both Sc2TiC‐ and Sc2TiC2‐containing clusterfullerenes have Ti‐localized LUMOs. Encapsulation of the redox‐active Ti ion inside the fullerene cage enables analysis of the cluster–cage strain in the endohedral fullerenes through electrochemical measurements.
机译:据报道,利用甲烷作为反应性气体的混合金属Sc-Ti系统在电弧中形成了内面金属富勒烯(EMF)。将这些结果与Sc / CH4和Ti / CH4系统的结果以及不含甲烷的合成结果进行比较后,发现所有关键成分对产品分布均产生强烈的相互影响。单独的甲烷气氛会抑制空笼式富勒烯的形成,而Ti / CH4系统则主要形成空笼式富勒烯。相比之下,Sc / CH4系统中的主要富勒烯产物是Sc4C2 @ C80(此合成中最丰富的EMF),Sc3C2 @ C80,Sc2C2 @ C82的异构体和Sc2C2 n家族(2 n = 74、76, 82、86、90等),以及Sc3CH @ C 80 。 Sc–Ti / CH 4 系统产生混合金属Sc 2 TiC @ C 2 n (2 n = 68,78,80 )和Sc 2 TiC 2 @C 2 n (2 n = 80)簇富勒烯族。新型含过渡金属的内表面富勒烯Sc 2 TiC @ I h -C 80 ,Sc 的分子结构2 TiC @ D 5h -C 80 和Sc 2 TiC 2 @I h -C 80 通过NMR表征。 Sc 2 TiC @ I h -C 80 的结构也通过单晶X射线衍射确定,表明存在短的Ti = C双键。含有Sc 2 TiC‐和Sc 2 TiC 2 的簇富勒烯均具有Ti局部LUMO。富勒烯笼中氧化还原活性Ti离子的包封可通过电化学测量分析内面富勒烯中的簇笼形应变。

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