Insights on proton-conducting ceramic electrochemical cell fabrication

被引:1
|
作者
Meisel, Charlie [1 ]
Huang, Jake D. [2 ]
Kim, You-Dong [1 ]
Stockburger, Sophia [1 ]
O'Hayre, Ryan [1 ]
Sullivan, Neal P. [3 ]
机构
[1] Colorado Sch Mines, Colorado Ctr Adv Ceram, Met & Mat Engn Dept, Golden, CO 80401 USA
[2] Univ Munster, Inorgan & Analyt Chem, Munster, Germany
[3] Colorado Sch Mines, Colorado Fuel Cell Ctr, Mech Engn Dept, Golden, CO 80401 USA
关键词
ceramics processing; elastic net; fuel cell; machine learning; proton-conducting ceramic; sintering; DOPED BARIUM ZIRCONATE; ELECTRICAL-CONDUCTIVITY; CATION NONSTOICHIOMETRY; PHASE COMPATIBILITY; POWER-DENSITY; FUEL-CELLS; STABILITY; GENERATION; BAZRO3; REGULARIZATION;
D O I
10.1111/jace.20321
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
This study investigates the key factors influencing sintering behavior and grain growth in BaCe0.4Zr0.4Y0.1Yb0.1O3-delta$\mathrm{BaCe_{0.4}Zr_{0.4}Y_{0.1}Yb_{0.1}O_{3-\delta }}$ (BCZYYb4411)-NiO negatrodes and BCZYYb electrolytes for protonic ceramic electrochemical cells (PCECs). Elastic net machine learning models are applied to a dataset of nearly 200 individual PCEC button cells fabricated over the course of more than 3 years to identify the key processing parameters that significantly affect negatrode shrinkage and electrolyte grain growth. The shrinkage rate of the BCZYYb4411-NiO negatrode is primarily governed by the solid-state sintering behavior. Higher sintering temperatures, longer dwell times, and smaller NiO particle size are the primary determinants that lead to greater shrinkage. New or lightly-used setters and more compact negatrodes are also found to increase shrinkage. Electrolyte grain growth is chiefly controlled by the liquid-phase sintering of the BCZYYb phase. Increased cerium content on the B-site leads to the largest enhancement in grain size, followed by increasing maximum sintering temperature. We find that the parameters used to tune the spray deposition of the electrolyte layer are also critical, with wetter and more uniform sprays promoting grain enlargement. Finally, we find that the sintering environment (e.g. presence/absence of sintering neighbors or sacrificial powders and the ambient humidity level) also substantially impacts both shrinkage and grain growth. This work comprehensively analyzes data from nearly 200 PCECs without "success bias," meaning that poor performers and fabrication failures were included in the analysis. By doing so, the study provides valuable insight into the critical factors controlling shrinkage and grain growth in BCZYYb-based PCECs. The findings offer foundational guidance for processing optimization that could lead to better repeatability, increased yields, and higher performance.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Proton-conducting oxides
    Kreuer, KD
    ANNUAL REVIEW OF MATERIALS RESEARCH, 2003, 33 : 333 - 359
  • [22] New Insights into the Proton-Conducting Solid Oxide Fuel Cells
    Cao J.
    Ji Y.
    Shao Z.
    Kuei Suan Jen Hsueh Pao/Journal of the Chinese Ceramic Society, 2021, 49 (01): : 83 - 92
  • [23] Proton-conducting polymer gels as new materials for electrochemical applications
    Zukowska, G
    Zygadlo-Monikowska, E
    Langwald, N
    Florjanczyk, Z
    Borkowska, R
    Kuzma, P
    Wieczorek, W
    Greenbaum, S
    Chung, SH
    JOURNAL OF NEW MATERIALS FOR ELECTROCHEMICAL SYSTEMS, 2000, 3 (01) : 51 - 54
  • [24] Synthesis and characterisation of cermet anodes for SOFCs with a proton-conducting ceramic phase
    Mather, GC
    Figueiredo, FM
    Jurado, JR
    Frade, JR
    SOLID STATE IONICS, 2003, 162 : 115 - 120
  • [25] Proton-conducting ceramic fuel cells: Scale up and stack integration
    Le, Long Q.
    Hernandez, Carolina Herradon
    Rodriguez, Marcos Hernandez
    Zhu, Liangzhu
    Duan, Chuancheng
    Ding, Hanping
    O'Hayre, Ryan P.
    Sullivan, Neal P.
    JOURNAL OF POWER SOURCES, 2021, 482
  • [26] Planar proton-conducting ceramic cells for hydrogen extraction: Mechanical properties, electrochemical performance and up-scaling
    Pirou, Steven
    Wang, Qingjie
    Khajavi, Peyman
    Georgolamprou, Xanthi
    Ricote, Sandrine
    Chen, Ming
    Kiebach, Ragnar
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2022, 47 (10) : 6745 - 6754
  • [27] Synthesis and hydrogen permeation properties of asymmetric proton-conducting ceramic membranes
    Cheng, SG
    Gupta, VK
    Lin, JYS
    SOLID STATE IONICS, 2005, 176 (35-36) : 2653 - 2662
  • [28] Sulfophenylation of polysulfones for proton-conducting fuel cell membranes
    Lafitte, B
    Karlsson, LE
    Jannasch, P
    MACROMOLECULAR RAPID COMMUNICATIONS, 2002, 23 (15) : 896 - 900
  • [29] New approaches for the determination of electrochemical parameters in the model of proton-conducting solid oxide fuel cell
    Zhang, Qingping
    Guo, Yuxiang
    Ding, Jinwen
    Jiang, Guisheng
    ELECTROCHIMICA ACTA, 2019, 318 : 560 - 571
  • [30] A proton-conducting fuel cell operating with hydrocarbon fuels
    Heo, Pilwon
    Ito, Kenichi
    Tomita, Atsuko
    Hibino, Takashi
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2008, 47 (41) : 7841 - 7844