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首页> 外文期刊>Nanoscale >Building robust architectures of carbon-wrapped transition metal nanoparticles for high catalytic enhancement of the 2LiBH(4)-MgH2 system for hydrogen storage cycling performance
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Building robust architectures of carbon-wrapped transition metal nanoparticles for high catalytic enhancement of the 2LiBH(4)-MgH2 system for hydrogen storage cycling performance

机译:carbon-wrapped构建健壮的架构过渡金属纳米粒子高催化增强2 libh (4) -MgH2系统储氢循环性能

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摘要

Nanoscale catalyst doping is regarded as one of the most effective strategies to improve the kinetics performance of hydrogen storage materials, but the agglomeration of nanoparticles is usually unavoidable during the repeated de/rehydrogenation processes. Herein, hierarchically structured catalysts (Fe/C, Co/C and Ni/C) were designed and fabricated to overcome the agglomeration issue of nanocatalysts applied to the 2LiBH(4)-MgH2 system for the first time. Uniform transition metal (TM) nanoparticles (similar to 10 nm) wrapped by few layers of carbon are synthesized by pyrolysis of the corresponding metal-organic frameworks (MOFs), and introduced into the 2LiBH(4)-MgH2 reactive hydride composites (RHCs) by ball milling. The particular features of the carbon-wrapped architecture effectively avoid the agglomeration of the TM nanoparticles during hydrogen storage cycling, and high catalysis is maintained during the subsequent de/rehydrogenation processes. After de/rehydrogenation cycling, FeB, CoB and MgNi3B2 can be formed as the catalytically active components with a particle size of 5-15 nm, which show a homogeneous distribution in the hydride matrix. Among the three catalysts, in situ-formed MgNi3B2 shows the best catalytic efficiency. The incubation period of the Fe/C, Co/C and Ni/C-doped 2LiBH(4)-MgH2 system between the two dehydrogenation steps was reduced to about 8 h, 4 h and 2 h, respectively, which is about 8 h, 12 h and 14 h shorter than that of the undoped 2LiBH(4)-MgH2 sample. In addition, the two-step dehydrogenation peak temperatures of the Ni/C-doped 2LiBH(4)-MgH2 system drop to 323.4 degrees C and 410.6 degrees C, meanwhile, the apparent activation energies of dehydrogenated MgH2 and LiBH4 decrease by 58 kJ mol(-1) and 71 kJ mol(-1), respectively. In particular, the cycling hydrogen desorption of the Ni/C-doped 2LiBH(4)-MgH2 sample exhibits very good stability compared with the undoped sample. The present approach, which ideally addresses the agglomeration of nanoparticles with efficient catalysis on the RHCs, provides a new inspiration to practical hydrogen storage application for high performance complex hydrides.
机译:掺杂纳米级催化剂被认为是之一最有效的策略来改善储氢的动力学性能材料,但是纳米颗粒的聚集通常是不可避免的在重复吗德/ rehydrogenation流程。分层次结构化催化剂(Fe / C, Co / C和Ni / C)是设计和制造克服nanocatalysts的结块问题应用于2 libh (4) -MgH2系统第一时间。(类似于10 nm)裹了几层热解碳合成的相应的有机框架(mof),引入2 libh (4) -MgH2活性氢化物复合材料(RHCs)球磨。carbon-wrapped的特定功能体系结构有效地避免结块TM在储氢纳米颗粒骑自行车,和高催化过程中保持随后de / rehydrogenation流程。德/ rehydrogenation骑自行车后,2月,穗轴和就可以形成MgNi3B2催化地活跃组件的粒度5 - 15海里,显示氢化物的均匀分布矩阵。MgNi3B2显示最好的催化效率。Fe / C的潜伏期,Co / C和Ni / C-doped 2 libh (4) -MgH2系统两者之间脱氢步骤减少到8 h, 4h和2 h分别约8 h, 12 h和14 h短比纯的2 libh (4) -MgH2样本。脱氢温度的峰值Ni / C-doped 2 libh (4) -MgH2系统降至323.4度摄氏410.6度,与此同时,种的表观活化能MgH2和LiBH4减少58 kJ摩尔(1)和71年分别kJ摩尔(1)。循环氢的解吸Ni / C-doped2 libh (4) -MgH2样本表现出很好的稳定性较纯的样品。方法,理想情况下地址纳米粒子的聚集与高效催化RHCs,提供了一种新的灵感实际氢存储应用程序高性能复杂的氢化物。

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