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反应球磨制备的MgH₂/5.3 wt% TiH₂纳米复合粉末的性能及燃料电池应用

Performance and fuel cell applications of reacted ball-milled MgH/5.3 wt% TiH nanocomposite powders.

作者信息

El-Eskandarany Mohamed Sherif, Alkandary Abdullah, Aldakheel Fahad, Al-Saidi Mariam, Al-Ajmi Fahad, Banyan Mohammad

机构信息

Nanotechnology and Advanced Materials Program, Energy and Building Research Center, Kuwait Institute for Scientific Research Safat 13109

出版信息

RSC Adv. 2018 Nov 14;8(67):38175-38185. doi: 10.1039/c8ra06570e.

Abstract

The present study aimed to enhance the kinetics behavior and destabilize the thermal stability of MgH powder by high-energy milling of Mg powder under 50 bar of H for several hours using Ti-balls as the milling media. The results showed a monotonical increase in Ti content worn off the milling media and introduced into the milled powders. This gradual doping led to homogeneous distribution of fine Ti particles into the Mg/MgH powder matrix without agglomeration or compositional fluctuations at the micro-level. During the activation stage of the powders, achieved at 350 °C/35 bar H prior to hydrogenation kinetics measurements, elemental Ti reacted with H to form fine TiH particles. Our proposed mechanically induced catalyzation approach was found to be mutually beneficial for decreasing the apparent activation energy of decomposition. In addition, introducing 5.3 wt% of TiH to the MgH powder obtained after 50 h led to the achievement of superior enhancement of gas uptake/release kinetics at relatively low temperatures. The nanocomposite MgH/5.3 TiH powder possessed fast hydrogenation/dehydrogenation kinetics behaviors and revealed long cycle lifetimes. This system was successfully employed as a solid-state hydrogen source to charge the battery of a cell-phone device using an integrated Ti-tank/commercial proton exchange membrane-fuel cell system.

摘要

本研究旨在通过在50巴氢气压力下使用钛球作为研磨介质对镁粉进行数小时高能球磨,来增强氢化镁(MgH)粉末的动力学行为并降低其热稳定性。结果表明,从研磨介质磨损并引入到研磨粉末中的钛含量呈单调增加。这种逐渐掺杂导致细小的钛颗粒均匀分布在Mg/MgH粉末基体中,在微观层面上没有团聚或成分波动。在粉末的活化阶段,即在氢化动力学测量之前于350℃/35巴氢气压力下实现,元素钛与氢反应形成细小的氢化钛(TiH)颗粒。我们提出的机械诱导催化方法被发现对于降低分解的表观活化能是互利的。此外,在50小时后获得的氢化镁粉末中引入5.3重量%的氢化钛,导致在相对较低温度下实现了气体吸收/释放动力学的卓越增强。纳米复合MgH/5.3TiH粉末具有快速的氢化/脱氢动力学行为,并显示出长循环寿命。该系统成功地用作固态氢源,通过集成钛罐/商业质子交换膜燃料电池系统为手机设备的电池充电。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f95/9090135/6da2655216b5/c8ra06570e-f1.jpg

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