Solar-Driven Reversible Hydrogen Storage.

Zhang, Xiaoyue; Sun, Yahui; Ju, Shunlong; Ye, Jikai; Hu, Xuechun; Chen, Wei; Yao, Long; Xia, Guanglin et al. · Adv Mater · 2023

basic_science · Level V

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Abstract

The lack of safe and efficient hydrogen storage is a major bottleneck for large-scale application of hydrogen energy. Reversible hydrogen storage of light-weight metal hydrides with high theoretical gravimetric and volumetric hydrogen density is one ideal solution but requires extremely high operating temperature with large energy input. Herein, taking MgH<sub>2</sub> as an example, a concept is demonstrated to achieve solar-driven reversible hydrogen storage of metal hydrides via coupling the photothermal effect and catalytic role of Cu nanoparticles uniformly distributed on the surface of MXene nanosheets (Cu@MXene). The photothermal effect of Cu@MXene, coupled with the "heat isolator" role of MgH<sub>2</sub> indued by its poor thermal conductivity, effectively elevates the temperature of MgH<sub>2</sub> upon solar irradiation. The "hydrogen pump" effect of Ti and TiH<sub>x</sub> species that are in situ formed on the surface of MXene from the reduction of MgH<sub>2</sub> , on the other hand, plays a catalytic role in effectively alleviating the kinetic barrier and hence decreasing the operating temperature required for reversible hydrogen adsorption and desorption of MgH<sub>2</sub> . Based on the combination of photothermal and catalytic effect of Cu@MXene, a reversible hydrogen storage capacity of 5.9 wt% is achieved for MgH<sub>2</sub> after 30 cycles using solar irradiation as the only energy source.