Energy Storage Science and Technology ›› 2020, Vol. 9 ›› Issue (4): 1066-1073.doi: 10.19799/j.cnki.2095-4239.2020.0068

• Energy Storage Materials and Devices • Previous Articles     Next Articles

Crystallographic and electrochemical hydrogen storage properties of Sm substitute Nd for La0.5Nd0.35-xSmxMg0.15Ni3.5 alloys

ZHAO"Xin1(), KE"Dandan1(), JI"Liqiang2, HU"Feng1, CAI"Ying1   

  1. 1.College of Materials and Metallurgy, Inner Mongolia University of Science and Technology, Baotou 014010, Inner Mongolia, China
    2.AT&M Environmental Engineering Technology Co. Ltd. , Beijing 100081, China
  • Received:2020-02-12 Revised:2020-02-18 Online:2020-07-05 Published:2020-06-30
  • Contact: Dandan KE E-mail:zhaoxinrare@163.com;kedandan4545@163.com

Abstract:

The Nd in the La0.5Nd0.35Mg0.15Ni3.5 alloy has been substituted with Sm to improve the performance to price ratio. Herein, the phase structures, morphologies, and hydrogen storage properties of the La0.5Nd0.35-xSmxMg0.15Ni3.5 alloys are studied using different methods. The Rietveld analysis pattern showed that the phase composition of the alloys containing multiphase structures, including the major phases (i.e., A2B7 and A5B19) and the residual phase (i.e., AB5), remained unchanged after the partial substitution of Sm instead of Nd. Increasing the content of the substituted Sm (x=0-0.30) changes the phase abundance, causing the A2B7 and A5B19 phases to increase before decreasing, whereas the AB5 phase showed the reverse trend. The a-axis parameter, c-axis, and unit cell volume of the major phases and the residual phase gradually decreased with the increasing Sm content. Further, the electrochemical properties of the alloy electrodes were improved by substituting Nd with Sm. The maximum discharge capacity of the alloy electrodes initially increased from 334.6 mA·h/g(x=0)to 346.5 mA·h/g (x=0.20). Then, it decreased to 331.1 mA·h/g(x=0.30). The high-rate dischargeability at a discharge current density of 2000 mA/g(HRD2000)initially increased from 41.4%(x=0) to 63.8% (x=0.20). Subsequently, it decreased to 52.1% (x = 0.30). The cycling capacity retention rate at the 100th cycle monotonically increased from 65.6% (x = 0) to 69.2% (x = 0.30), which should be attributed to the improvement in corrosion resistance of the alloy electrodes during the charge-discharge cycle.

Key words: La-Mg-Ni-based alloy, electrochemical characteristics, electrochemical kinetic property, superlattice structure

CLC Number: