TY - JOUR
T1 - Effect of Co-Substitution on Hydrogen Absorption and Desorption Reactions of YMgNi4-Based Alloys
AU - Sato, Toyoto
AU - Ikeda, Kazutaka
AU - Honda, Takashi
AU - Daemen, Luke L.
AU - Cheng, Yongqiang
AU - Otomo, Toshiya
AU - Sagayama, Hajime
AU - Ramirez-Cuesta, Anibal J.
AU - Takagi, Shigeyuki
AU - Kono, Tatsuoki
AU - Yang, Heena
AU - Luo, Wen
AU - Lombardo, Loris
AU - Züttel, Andreas
AU - Orimo, Shin Ichi
N1 - Funding Information:
This research was supported by JST SICORP (JPMJSC 1802), MEXT/JSPS KAKENHI (JP18H05513 and JP18H05518 (“Hydrogenomics”), 19K05051, 22H01817), and the GIMRT Program of the Institute for Materials Research, Tohoku University (Proposal no. 202106-RDKGE-0102). Synchrotron powder X-ray and neutron diffraction were approved by the Photon Factory Program Advisory Committee (proposal no. 2019G572) and the Neutron Science Proposal Review Committee of J-PARC MLF (proposal no. 2019A0068 and 2019B0390). This research benefited from the use of the VISION beamline (IPTS-23889.1) at ORNL’s SNS, supported by the Scientific User Facilities Division, Office of Basic Energy Sciences, U.S. Department of Energy, under contract no. DE-AC0500OR22725. Computational resources were made available through the VirtuES and ICE-MAN projects, funded by the Laboratory Directed Research and Development at ORNL.
Publisher Copyright:
© 2022 American Chemical Society.
PY - 2022
Y1 - 2022
N2 - YMgNi4-based alloys exhibit reversible hydrogen absorption and desorption reactions at near room temperature. Here, we report that Co-substituted YMgNi4-based alloys exhibited higher hydrogen contents and lower hydrogen absorption and desorption reaction pressures than unsubstituted alloys. The effects of Co-substitution viewed from atomic arrangements were particularly clarified by synchrotron radiation powder X-ray diffraction, neutron diffraction, and inelastic neutron scattering. Powder neutron diffraction of the Co-substituted alloy at 5 MPa of D2 pressure suggested the formation of -phase deuteride (higher deuterium content) from β-phase deuteride (lower deuterium content). However, no -phase deuteride was observed in the unsubstituted alloys at 5 MPa. Therefore, the -phase deuteride formation of the Co-substituted alloy at lower pressure led to higher hydrogen contents than the unsubstituted alloys. The combined results of powder neutron diffraction and inelastic neutron scattering suggested that the -phase hydride of the Co-substituted alloy was continuously generated due to additional H atoms at the H atom sites in the β-phase hydride because of the disordered H atomic arrangement involving H-H interactions. As a result, hydrogen absorption and desorption reaction pressures for the -phase deuteride formation with higher hydrogen storage capacity were lowered.
AB - YMgNi4-based alloys exhibit reversible hydrogen absorption and desorption reactions at near room temperature. Here, we report that Co-substituted YMgNi4-based alloys exhibited higher hydrogen contents and lower hydrogen absorption and desorption reaction pressures than unsubstituted alloys. The effects of Co-substitution viewed from atomic arrangements were particularly clarified by synchrotron radiation powder X-ray diffraction, neutron diffraction, and inelastic neutron scattering. Powder neutron diffraction of the Co-substituted alloy at 5 MPa of D2 pressure suggested the formation of -phase deuteride (higher deuterium content) from β-phase deuteride (lower deuterium content). However, no -phase deuteride was observed in the unsubstituted alloys at 5 MPa. Therefore, the -phase deuteride formation of the Co-substituted alloy at lower pressure led to higher hydrogen contents than the unsubstituted alloys. The combined results of powder neutron diffraction and inelastic neutron scattering suggested that the -phase hydride of the Co-substituted alloy was continuously generated due to additional H atoms at the H atom sites in the β-phase hydride because of the disordered H atomic arrangement involving H-H interactions. As a result, hydrogen absorption and desorption reaction pressures for the -phase deuteride formation with higher hydrogen storage capacity were lowered.
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U2 - 10.1021/acs.jpcc.2c03265
DO - 10.1021/acs.jpcc.2c03265
M3 - Article
AN - SCOPUS:85139432902
SN - 1932-7447
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
ER -