TY - JOUR
T1 - Honeycomb ZrCo Intermetallic for High Performance Hydrogen and Hydrogen Isotope Storage
AU - Yuan, Yingbo
AU - Liu, Xiaofang
AU - Tang, Wukui
AU - Li, Zhenyang
AU - Huang, Gang
AU - Zou, Haihan
AU - Yu, Ronghai
AU - Shui, Jianglan
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/1/25
Y1 - 2023/1/25
N2 - Hydrogen isotope storage materials are of great significance for controlled nuclear fusion, which is promising to provide unlimited clean and dense energy. Conventional storage materials of micrometer-sized polycrystalline ZrCo alloys prepared by the smelting method suffer from slow kinetics, pulverization, disproportionation, and poor cycling stability. Here, we synthesize a honeycomb-structured ZrCo composed of highly crystalline submicrometer ZrCo units using electrospray deposition and magnesiothermic reduction. Compared with conventional ones, honeycomb ZrCo does not require activation and exhibits more than 1 order of magnitude increase in kinetic property. Owing to low defects and low stress, the anti-disproportionation ability and cycling stability of honeycomb ZrCo are also obviously higher than those of conventional ZrCo. Moreover, the interfacial stress (due to hydrogenation/dehydrogenation) as a function of particle radius is established, quantitatively elucidating that small-sized ZrCo reduces stress and pulverization. This study points out a direction for the structural design of ZrCo alloy with high-performance hydrogen isotope storage.
AB - Hydrogen isotope storage materials are of great significance for controlled nuclear fusion, which is promising to provide unlimited clean and dense energy. Conventional storage materials of micrometer-sized polycrystalline ZrCo alloys prepared by the smelting method suffer from slow kinetics, pulverization, disproportionation, and poor cycling stability. Here, we synthesize a honeycomb-structured ZrCo composed of highly crystalline submicrometer ZrCo units using electrospray deposition and magnesiothermic reduction. Compared with conventional ones, honeycomb ZrCo does not require activation and exhibits more than 1 order of magnitude increase in kinetic property. Owing to low defects and low stress, the anti-disproportionation ability and cycling stability of honeycomb ZrCo are also obviously higher than those of conventional ZrCo. Moreover, the interfacial stress (due to hydrogenation/dehydrogenation) as a function of particle radius is established, quantitatively elucidating that small-sized ZrCo reduces stress and pulverization. This study points out a direction for the structural design of ZrCo alloy with high-performance hydrogen isotope storage.
KW - ZrCo alloy
KW - electrospray deposition
KW - honeycomb porous structure
KW - hydrogen isotope storage
KW - hydrogen storage
UR - https://www.scopus.com/pages/publications/85146331794
U2 - 10.1021/acsami.2c17173
DO - 10.1021/acsami.2c17173
M3 - 文章
C2 - 36627581
AN - SCOPUS:85146331794
SN - 1944-8244
VL - 15
SP - 3904
EP - 3911
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 3
ER -