首页> 外文期刊>Journal of power sources >Effects of Pd substitution on the electrochemical properties of Mg_(0.9-x)Ti_(0.1)Pd_xNi (x = 0.04-0.1) hydrogen storage alloys
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Effects of Pd substitution on the electrochemical properties of Mg_(0.9-x)Ti_(0.1)Pd_xNi (x = 0.04-0.1) hydrogen storage alloys

机译:钯取代对Mg_(0.9-x)Ti_(0.1)Pd_xNi(x = 0.04-0.1)储氢合金电化学性能的影响

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Amorphous Mg_(0.9-x)Ti_(0.1)Pd_xNi (x = 0.04-0.1) hydrogen storage alloys were prepared by mechanical alloying (MA). The effects of Pd substitution on the electrochemical properties of the Mg_(0.9-x)Ti_(0.1)Pd_xNi (x = 0.04-0.1) electrode alloys were studied by cyclic charge-discharge, linear polarization, anodic polarization, electrochemical impedance spectroscopy (EIS), and hydrogen diffusion coefficient experiments. It was found that the cyclic capacity retention rate C_(50)/C_1 of the quaternary alloys was greatly improved due to the substitution of Pd for Mg. Mg_(0.8)Ti_(0.1)Pd_(0.1)Ni electrode alloy retained the discharge capacity above 100mA hg~(-1) even after 80 charge-discharge cycles, possessing the longest cycle life in the studied quaternary alloys. The improvement of cycle life was ascribed to the formation of passive film on the surface of these electrode alloys. X-ray photoelectron spectroscopy (XPS) analysis proved that the passive film was composed of Mg(OH)_2, TiO_2, NiO, and PdO, which synergistically protected the alloy from further oxidation. The Auger Electron Spectroscopy (AES) study revealed that the thickness of passive film increased with augmentation of the Pd content. The electrochemical impedance study of electrode alloys after different cycles demonstrated that the passive film became thicker during cycles and its thickness also increased with Pd content augmentation. It was also found that the augmentation of Pd content resulted in the decrease of exchange current density /o and the increase of the charge-transfer resistance R_(ct). With increasing the Pd amount in the Mg_(0.9-x)Ti_(0.1)Pd_xNi (x = 0.04-0.1) electrode alloys, hydrogen diffusion coefficient D was gradually enhanced at first. Then, it decreased with augmentation of cycle due to the growth of passive film on the surface of the alloys.
机译:通过机械合金化(MA)制备非晶Mg_(0.9-x)Ti_(0.1)Pd_xNi(x = 0.04-0.1)储氢合金。通过循环充放电,线性极化,阳极极化,电化学阻抗谱(EIS)研究了Pd取代对Mg_(0.9-x)Ti_(0.1)Pd_xNi(x = 0.04-0.1)电极合金的电化学性能的影响)和氢扩散系数实验。结果发现,由于用Pd代替了Mg,四元合金的循环容量保持率C_(50)/ C_1大大提高。 Mg_(0.8)Ti_(0.1)Pd_(0.1)Ni电极合金甚至在80次充放电循环后仍保持100mA hg〜(-1)以上的放电容量,在所研究的四元合金中具有最长的循环寿命。循环寿命的提高归因于在这些电极合金的表面上形成钝化膜。 X射线光电子能谱(XPS)分析证明该钝化膜由Mg(OH)_2,TiO_2,NiO和PdO组成,可协同保护合金免受进一步氧化。俄歇电子能谱(AES)研究表明,钝化膜的厚度随Pd含量的增加而增加。电极合金在不同循环后的电化学阻抗研究表明,钝化膜在循环过程中变厚,并且其厚度也随着Pd含量的增加而增加。还发现,Pd含量的增加导致交换电流密度/ o的降低和电荷转移电阻R_(ct)的增加。随着Mg_(0.9-x)Ti_(0.1)Pd_xNi(x = 0.04-0.1)电极合金中Pd含量的增加,氢扩散系数D首先逐渐提高。然后,由于钝化膜在合金表面的生长,其随着循环的增加而降低。

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