Zhang Jiyue, Wang Wenda, Chen Xiaowei, Jin Jinlong, Yan Xiaojun, Huang Jianmei
School of Energy and Power Engineering, Beihang University, Beijing 100191, China.
School of Science, Jimei University, Xiamen 361021, China.
J Am Chem Soc. 2024 Apr 17;146(15):10432-10442. doi: 10.1021/jacs.3c13970. Epub 2024 Mar 18.
As an efficient and clean energy carrier, hydrogen is expected to play a key role in future energy systems. However, hydrogen-storage technology must be safe with a high hydrogen-storage density, which is difficult to achieve. MgH is a promising solid-state hydrogen-storage material owing to its large hydrogen-storage capacity (7.6 wt %) and excellent reversibility, but its large-scale utilization is restricted by slow hydrogen-desorption kinetics. Although catalysts can improve the hydrogen-storage kinetics of MgH, they reduce the hydrogen-storage capacity. Single-atom catalysts maximize the atom utilization ratio and the number of interfacial sites to boost the catalytic activity, while easy aggregation at high temperatures limits further application. Herein, we designed a single-atom Ni-loaded TiO catalyst with superior thermal stability and catalytic activity. The optimized 15wt%-Ni@TiO catalyst reduced the onset dehydrogenation temperature of MgH to 200 °C. At 300 °C, the H released and absorbed 4.6 wt % within 5 min and 6.53 wt % within 10 s, respectively. The apparent activation energies of MgH dehydrogenation and hydrogenation were reduced to 64.35 and 35.17 kJ/mol of H, respectively. Even after 100 cycles of hydrogenation and dehydrogenation, there was still a capacity retention rate of 97.26%. The superior catalytic effect is attributed to the highly synergistic catalytic activity of single-atom Ni, numerous oxygen vacancies, and multivalent Ti in the TiO support, in which the single-atom Ni plays the dominant role, accelerating electron transfer between Mg and H and weakening the Mg-H bonds. This work paves the way for superior hydrogen-storage materials for practical unitization and also extends the application of single-atom catalysis in high-temperature solid-state reactions.
作为一种高效清洁能源载体,氢有望在未来能源系统中发挥关键作用。然而,储氢技术必须安全且储氢密度高,这一点很难实现。MgH由于其高储氢容量(7.6 wt%)和出色的可逆性,是一种很有前景的固态储氢材料,但其大规模应用受到氢解吸动力学缓慢的限制。尽管催化剂可以改善MgH的储氢动力学,但会降低储氢容量。单原子催化剂能使原子利用率和界面位点数量最大化以提高催化活性,然而高温下易聚集限制了其进一步应用。在此,我们设计了一种具有优异热稳定性和催化活性的单原子负载TiO催化剂。优化后的15wt%-Ni@TiO催化剂将MgH的起始脱氢温度降至200°C。在300°C时,释放的氢在5分钟内为4.6 wt%,吸收的氢在10秒内为6.53 wt%。MgH脱氢和加氢的表观活化能分别降至64.35和35.17 kJ/mol的氢。即使经过100次加氢和脱氢循环,容量保持率仍为97.26%。这种优异的催化效果归因于单原子Ni、大量氧空位以及TiO载体中多价Ti的高度协同催化活性,其中单原子Ni起主导作用,加速了Mg和H之间的电子转移并削弱了Mg-H键。这项工作为实用化的优异储氢材料铺平了道路,也扩展了单原子催化在高温固态反应中的应用。