Faculty of Chemistry, The University of Warsaw, Pasteura 1, 02093, Warsaw, Poland.
Dalton Trans. 2011 Dec 28;40(48):12808-17. doi: 10.1039/c1dt10955c. Epub 2011 Nov 3.
High-energy milling of Y(BH(4))(3) (containing LiCl as a by-product, which has not been removed) with MBH(4) (M = Li, Na, K, (CH(3))(4)N) leads to the first two examples of quasi-ternary yttrium borohydrides: KY(BH(4))(4) and (CH(3))(4)NY(BH(4))(4), while no chemical reaction is observed for LiBH(4) and NaBH(4). KY(BH(4))(4) is isostructural to NaSc(BH(4))(4) (Cmcm, a = 8.5157(4) Å, b = 12.4979(6) Å, c = 9.6368(5) Å, V = 1025.62(9) Å(3), Z = 4), while (CH(3))(4)NY(BH(4))(4) crystallises in primitive orthorhombic cell, similarly to KSc(BH(4))(4) (Pnma, a = 15.0290(10) Å, b = 8.5164(6) Å, c = 12.0811(7) Å, V = 1546.29(17) Å(3), Z = 4). The thermal decomposition of hydrogen-rich KY(BH(4))(4) (8.6 wt.% H) involves the formation of an unidentified intermediate at 200 °C and recovery of KBH(4) at higher temperatures; at 410 °C, KCl and YH(2) are observed. The thermal decomposition of (CH(3))(4)NY(BH(4))(4) occurs via two partly overlapping endothermic steps with concomitant emission of H(2) and organic compounds. Heating of a NaBH(4)/Y(BH(4))(3) mixture above 165 °C results in a mixed-cation mixed-anion borohydride, NaY(BH(4))(2)Cl(2), but not NaY(BH(4))(4). The reduced reactivity of Y(BH(4))(3) towards borohydride Lewis bases when compared to hypothetical scandium borohydride can be explained by the lower Lewis acidity of Y(BH(4))(3) than Sc(BH(4))(3).
用 MBH(4)(M = Li、Na、K、(CH(3))(4)N)高能球磨 Y(BH(4))(3)(含有未除去的 LiCl 作为副产物)导致首例准三元镱硼氢化物:KY(BH(4))(4)和(CH(3))(4)NY(BH(4))(4),而 LiBH(4)和 NaBH(4)则没有发生化学反应。KY(BH(4))(4)与 NaSc(BH(4))(4)(Cmcm,a = 8.5157(4)Å,b = 12.4979(6)Å,c = 9.6368(5)Å,V = 1025.62(9)Å(3),Z = 4)同构,而(CH(3))(4)NY(BH(4))(4)则以原始正交晶系结晶,与 KSc(BH(4))(4)(Pnma,a = 15.0290(10)Å,b = 8.5164(6)Å,c = 12.0811(7)Å,V = 1546.29(17)Å(3),Z = 4)相似。富氢 KY(BH(4))(4)(8.6wt.%H)的热分解在 200°C 时涉及到一种未识别的中间产物的形成,在更高温度下恢复 KBH(4);在 410°C 时,观察到 KCl 和 YH(2)。(CH(3))(4)NY(BH(4))(4)的热分解通过两个部分重叠的吸热步骤进行,同时伴随着 H(2)和有机化合物的释放。在 165°C 以上加热 NaBH(4)/Y(BH(4))(3)混合物会导致形成混合阳离子混合阴离子硼氢化物 NaY(BH(4))(2)Cl(2),但不会形成 NaY(BH(4))(4)。与假设的钪硼氢化物相比,Y(BH(4))(3)对硼氢化物路易斯碱的反应性较低,可以解释为 Y(BH(4))(3)的路易斯酸性低于 Sc(BH(4))(3)。