Clean Energy Directorate, Savannah River National Lab, P.O. Box A, Aiken, South Carolina 29808, USA.
Nano Lett. 2012 Feb 8;12(2):582-9. doi: 10.1021/nl203045v. Epub 2012 Jan 10.
Herein, we present a lithium-doped fullerane (Li(x)-C(60)-H(y)) that is capable of reversibly storing hydrogen through chemisorption at elevated temperatures and pressures. This system is unique in that hydrogen is closely associated with lithium and carbon upon rehydrogenation of the material and that the weight percent of H(2) stored in the material is intimately linked to the stoichiometric ratio of Li:C(60) in the material. Characterization of the material (IR, Raman, UV-vis, XRD, LDI-TOF-MS, and NMR) indicates that a lithium-doped fullerane is formed upon rehydrogenation in which the active hydrogen storage material is similar to a hydrogenated fullerene. Under optimized conditions, a lithium-doped fullerane with a Li:C(60) mole ratio of 6:1 can reversibly desorb up to 5 wt % H(2) with an onset temperature of ~270 °C, which is significantly less than the desorption temperature of hydrogenated fullerenes (C(60)H(x)) and pure lithium hydride (decomposition temperature 500-600 and 670 °C respectively). However, our Li(x)-C(60)-H(y) system does not suffer from the same drawbacks as typical hydrogenated fullerenes (high desorption T and release of hydrocarbons) because the fullerene cage remains mostly intact and is only slightly modified during multiple hydrogen desorption/absorption cycles. We also observed a reversible phase transition of C(60) in the material from face-centered cubic to body-centered cubic at high levels of hydrogenation.
在此,我们提出了一种锂离子富勒烯(Li(x)-C(60)-H(y)),它能够在高温高压下通过化学吸附可逆地储存氢气。该系统的独特之处在于,在材料重新氢化时,氢气与锂和碳密切相关,并且材料中储存的氢气重量百分比与材料中 Li:C(60)的化学计量比密切相关。对该材料的表征(IR、Raman、UV-vis、XRD、LDI-TOF-MS 和 NMR)表明,在重新氢化时形成了锂离子富勒烯,其中活性储氢材料类似于氢化富勒烯。在优化条件下,Li:C(60)摩尔比为 6:1 的锂离子富勒烯可以在约 270°C 的起始温度下可逆解吸高达 5wt%的氢气,这明显低于氢化富勒烯(C(60)H(x))和纯氢化锂(分解温度分别为 500-600°C 和 670°C)的解吸温度。然而,我们的 Li(x)-C(60)-H(y)系统不会像典型的氢化富勒烯那样存在相同的缺点(高解吸温度和烃类释放),因为富勒烯笼在多次氢气解吸/吸收循环中基本保持完整,仅略有修饰。我们还观察到材料中 C(60)在高氢化水平下从面心立方到体心立方的可逆相变。