Yang Xinglin, Zhang Jiaqi, Hou Quanhui, Guo Xintao
School of Energy and Power, Jiangsu University of Science and Technology, Zhenjiang 212003, China.
School of Automotive Engineering, Yancheng Institute of Technology, Yancheng 224051, China.
Nanomaterials (Basel). 2022 Jul 19;12(14):2468. doi: 10.3390/nano12142468.
Transition metal catalysts are particularly effective in improving the kinetics of the reversible hydrogen storage reaction for light metal hydrides. Herein, KMoO microrods were prepared using a simple evaporative crystallization method, and it was confirmed that the kinetic properties of magnesium hydride could be adjusted by doping cubic KMoO into MgH. Its unique cubic structure forms new species in the process of hydrogen absorption and desorption, which shows excellent catalytic activity in the process of hydrogen storage in MgH. The dissociation and adsorption time of hydrogen is related to the amount of KMoO. Generally speaking, the more KMoO, the faster the kinetic performance and the shorter the time used. According to the experimental results, the initial dehydrogenation temperature of MgH + 10 wt% KMoO composite is 250 °C, which is about 110 °C lower than that of As-received MgH. At 320 °C, almost all dehydrogenation was completed within 11 min. In the temperature rise hydrogen absorption test, the composite system can start to absorb hydrogen at about 70 °C. At 200 °C and 3 MPa hydrogen pressure, 5.5 wt% H can be absorbed within 20 min. In addition, the activation energy of hydrogen absorption and dehydrogenation of the composite system decreased by 14.8 kJ/mol and 26.54 kJ/mol, respectively, compared to pure MgH. In the cycle-stability test of the composite system, the hydrogen storage capacity of MgH can still reach more than 92% after the end of the 10th cycle, and the hydrogen storage capacity only decreases by about 0.49 wt%. The synergistic effect among the new species MgO, MgMoO and KH generated in situ during the reaction may help to enhance the absorption and dissociation of H on the Mg/MgH surface and improve the kinetics of MgH for absorption and dehydrogenation.
过渡金属催化剂在改善轻金属氢化物可逆储氢反应的动力学方面特别有效。在此,采用简单的蒸发结晶法制备了KMoO微棒,并证实通过将立方KMoO掺杂到MgH中可以调节氢化镁的动力学性能。其独特的立方结构在吸氢和解吸过程中形成新物种,在MgH储氢过程中表现出优异的催化活性。氢的解离和吸附时间与KMoO的量有关。一般来说,KMoO越多,动力学性能越快,所用时间越短。根据实验结果,MgH + 10 wt% KMoO复合材料的初始脱氢温度为250℃,比原样MgH低约110℃。在320℃时,几乎所有脱氢在11分钟内完成。在升温吸氢试验中,复合体系在约70℃时开始吸氢。在200℃和3MPa氢压下,20分钟内可吸收5.5 wt%的H。此外,与纯MgH相比,复合体系吸氢和脱氢的活化能分别降低了14.8 kJ/mol和26.54 kJ/mol。在复合体系的循环稳定性试验中,第10次循环结束后,MgH的储氢容量仍能达到92%以上,储氢容量仅下降约0.49 wt%。反应过程中原位生成的新物种MgO、MgMoO和KH之间的协同作用可能有助于增强H在Mg/MgH表面的吸附和解离,改善MgH吸氢和脱氢的动力学。