Coppola Nunzia, Polverino Pierpaolo, Carapella Giovanni, Ciancio Regina, Rajak Piu, Dario Montinaro, Martinelli Francesca, Maritato Luigi, Pianese Cesare
Dipartimento di Ingegneria Industriale DIIN, Università degli Studi and CNR SPIN, 84084 Fisciano, SA, Italy.
Dipartimento di Ingegneria Industriale DIIN, Università degli Studi di Salerno, 84084 Fisciano, SA, Italy.
Materials (Basel). 2021 Oct 5;14(19):5826. doi: 10.3390/ma14195826.
We investigate the influence of position, under large circular sputtering targets, on the final electrochemical performance of 35 mm diameter button solid oxide fuel cells with sputter-deposited Gadolinium doped Ceria barrier layers, positioned in order to almost cover the entirety of the area associated with a 120 × 80 mm industrial cell. We compare the results obtained via structural and morphological analysis to the Electrochemical Impedance Spectroscopy (EIS) measurements performed on the button cells, disentangling the role of different parameters. The Atomic Force Microscopy analysis makes it possible to observe a decrease in the roughness values from the peripheral to the central zones under the sputtering target, with peak-to-valley roughness values, respectively, decreasing from 380 nm to 300 nm, while Scanning Electron Microscopy and Energy Dispersive Spectroscopy show a dependence of the layer coverage from the position. The electrochemical performances of button cells with buffer layers of only 200 nm in thickness, and with negligible thickness gradients across them, show current density values of up to 478 mA/cm at 0.8 V and 650 °C, with an improvement of more than 67% with respect to button cells with standard (screen printed) buffer layers. These results point out the major influence exerted by parameters such as the thickness gradient and the coverage of the sputtered buffer layers in determining the final electrochemical performances.
我们研究了在大型圆形溅射靶材下方的位置对直径35毫米纽扣型固体氧化物燃料电池最终电化学性能的影响,该纽扣型电池具有溅射沉积的钆掺杂二氧化铈阻挡层,其位置设置为几乎覆盖与120×80毫米工业电池相关的整个区域。我们将通过结构和形态分析获得的结果与对纽扣型电池进行的电化学阻抗谱(EIS)测量结果进行比较,以厘清不同参数的作用。原子力显微镜分析使得观察到在溅射靶材下方从周边到中心区域粗糙度值的降低成为可能,峰谷粗糙度值分别从380纳米降至300纳米,而扫描电子显微镜和能量色散谱显示层覆盖率与位置有关。厚度仅为200纳米且厚度梯度可忽略不计的缓冲层纽扣型电池的电化学性能,在0.8伏和650℃时显示出高达478毫安/平方厘米的电流密度值,相对于具有标准(丝网印刷)缓冲层的纽扣型电池有超过67%的改善。这些结果指出了诸如溅射缓冲层的厚度梯度和覆盖率等参数在决定最终电化学性能方面所施加的主要影响。