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Abstract
Hydrogen-isotope storage materials are essential for the controlled nuclear fusion. However, the currently used smelting-ZrCo alloy suffers from rapid degradation of performance due to severe disproportionation. Here, we reveal a defect-derived disproportionation mechanism and report a nano-single-crystal strategy to solve ZrCo’s problems. Single-crystal nano-ZrCo is synthesized by a wet-chemistry method and exhibits excellent comprehensive hydrogen-isotope storage performances, including ultrafast uptake/release kinetics, high anti-disproportionation ability, and stable cycling, far superior to conventional smelting-ZrCo. Especially, a further incorporation of Ti into nano-ZrCo can almost suppress the disproportionation reaction. Moreover, a mathematical relationship between dehydrogenation temperature and ZrCo particle size is established. Additionally, a microwave method capable of nondestructively detecting the hydrogen storage state of ZrCo is developed. The proposed disproportionation mechanism and anti-disproportionation strategy will be instructive for other materials with similar problems.
ZrCo, a promising hydrogen isotope storage material, has poor cyclic storage capacity. Here author reveal a defect-derived disproportionation mechanism and report a nano-single-crystal strategy to comprehensively improve performances.
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1 Beihang University, School of Materials Science and Engineering, Beijing, P. R. China (GRID:grid.64939.31) (ISNI:0000 0000 9999 1211)
2 National Key Laboratory of Scattering and Radiation, Beijing, P. R. China (GRID:grid.64939.31)
3 Beihang University, School of Materials Science and Engineering, Beijing, P. R. China (GRID:grid.64939.31) (ISNI:0000 0000 9999 1211); National Key Laboratory of Scattering and Radiation, Beijing, P. R. China (GRID:grid.64939.31)
4 Beihang University, School of Materials Science and Engineering, Beijing, P. R. China (GRID:grid.64939.31) (ISNI:0000 0000 9999 1211); Tianmushan Laboratory, Xixi Octagon City, Yuhang District, Hangzhou, P. R. China (GRID:grid.64939.31)