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Effect of anodic current density on the spreading of infiltrated nickel nanoparticles in nickel-yttria stabilized zirconia cermet anodes

机译:阳极电流密度对镍-钇稳定的氧化锆金属陶瓷阳极中渗透的镍纳米粒子扩散的影响

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Nickel - yttria stabilized zirconia (Ni-YSZ) anodes for solid oxide fuel cells were infiltrated with nickel nano particles with the objective of improving its performance by increasing the density of triple phase boundaries (TPBs). However, the nanoparticles deposited on the YSZ grains are not connected to one another, so the additional TPBs are not electrochemically active. It is postulated that at highly humid conditions ( 95% H2O) created by high current density, nickel nanoparticles near the anode-electrolyte interface will spread and percolate, becoming electrochemically active. To study this behavior, infiltrated nickel nanoparticles were exposed to low, high and extreme humidity conditions during testing. When exposed to low humidity, no performance improvement or changes to the nanoparticle morphology was observed. At high humidity, the cell showed performance improvement and when cooled they showed nanoparticle coarsening. Exposure to extreme humidity (approximate to 100%) caused performance to degrade back towards that of an un-infiltrated cell and severe nickel nanoparticles coarsening was observed in the cooled cell. This study validates the hypothesis that exposure to controlled high local humidity conditions can lead to the right amount of spreading of the deposited nickel nanoparticles to achieve percolation, thereby activating their TPBs and improving cell performance.
机译:镍纳米粒子渗透了用于固体氧化物燃料电池的镍-氧化钇稳定的氧化锆(Ni-YSZ)阳极,目的是通过增加三相边界(TPB)的密度来提高其性能。但是,沉积在YSZ晶粒上的纳米颗粒没有相互连接,因此其他的TPB没有电化学活性。据推测,在由高电流密度产生的高湿度条件下(> 95%H2O),靠近阳极-电解质界面的镍纳米粒子将扩散并渗透,从而具有电化学活性。为了研究这种行为,渗透的镍纳米粒子在测试过程中暴露于低,高和极端湿度条件下。当暴露在低湿度下时,未观察到性能改善或纳米颗粒形态的变化。在高湿度下,电池显示出性能改善,而在冷却时,它们显示出纳米颗粒变粗。暴露于极端湿度(大约100%)会导致性能下降,回到未渗透的电池,并且在冷却的电池中观察到严重的镍纳米粒子变粗。这项研究验证了以下假设:暴露于受控的高局部湿度条件下可以导致沉积的镍纳米粒子散布适量,以实现渗滤,从而激活其TPB并改善电池性能。

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