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Pusan National University Study Provides Breakthrough in Enhancing Solid Oxide Fuel Cell Efficiency With Rapid PrOx Coating Method

Pusan National University Study Provides Breakthrough in Enhancing Solid Oxide Fuel Cell Efficiency With Rapid PrOx Coating Method

釜山国立大学的研究提供了一种快速PrOx涂层方法,以提高固体氧化物燃料电池的效率
PR Newswire ·  07/19 08:31

Rapid electrochemical method enhances solid oxide fuel cell electrodes, reducing polarization resistance and boosting peak power density

快速电化学方法增强了固体氧化物燃料电池的电极,降低了极化电阻并提高了峰值功率密度。

BUSAN, South Korea, July 19, 2024 /PRNewswire/ -- Improving the efficiency of solid oxide fuel cells (SOFCs) is crucial for advancing clean energy technologies. Researchers from Korea have developed a rapid, practical method to deposit a praseodymium oxide (PrOx) layer on lanthanum strontium manganite–yttria-stabilized zirconia (LSM–YSZ) composite electrodes. This PrOx coating significantly enhances oxygen reduction and boosts electrode performance, reducing polarization resistance by 89% and increasing reliability and efficiency in energy production.

韩国釜山,2024年7月19日/美通社/--提高固体氧化物燃料电池(SOFCs)效率对于推进清洁能源技术至关重要。来自韩国的研究人员发现了一种快速实用的方法,使用阴极电化学沉积将一层氧化镨(PrOx)沉积在镧钇锰酸盐-稳定氧化锆(LSM-YSZ)复合电极上。这种PrOx涂层显着提高了氧还原反应,并提高了电极性能,将极化电阻降低了89%,提高了能量产生的可靠性和效率。

Researchers at Pusan National University developed a method to coat PrOx onto LSM-YSZ electrodes using cathodic electrochemical deposition, enhancing the efficiency and durability of solid oxide fuel cells.
釜山国立大学的研究人员开发出了一种方法,使用阴极电化学沉积来涂覆PrOx于LSm-YSZ电极上,提高了固体氧化物燃料电池的效率和耐久性。

Rising global demand for clean energy drives advancements in technologies like SOFCs, known for converting hydrogen and methane into emission-free electricity. SOFCs rely on key components: electrodes (cathode and anode) and the electrolyte, which are essential for converting chemical energy into electrical energy. These components are typically made from materials like lanthanum strontium manganite (LSM) and yttria-stabilized zirconia (YSZ). Combining LSM and YSZ to form LSM-YSZ enhances stability and durability, ensuring a prolonged electrode lifespan.

全球对清洁能源的需求增长驱动了像固体氧化物燃料电池(SOFC)这样转化氢和甲烷为无排放电力的技术的进步。SOFC依赖于关键部件:电极(阴极和阳极)和电解液,它们对于将化学能转化为电能至关重要。这些部件通常由诸如镧钇锰酸盐(LSM)和稳定氧化锆(YSZ)等材料制成。将LSm和YSZ组合形成LSm-YSZ可以增强稳定性和耐久性,确保电极寿命更长。

Current SOFC technology faces challenges, notably electrode degradation, exacerbated at lower temperatures. Enhancing the oxygen reduction reaction (ORR) at the cathode is crucial for improving ion flow and overall fuel cell performance and durability. Addressing these issues is vital for expanding SOFC applications in energy conversion systems.

当前的SOFC技术面临挑战,尤其是在低温下,电极退化加剧。提高阴极中的氧还原反应(ORR)对于改进离子流和整体燃料电池的性能和耐久性至关重要。解决这些问题对于扩展SOFC在能源转换系统中的应用至关重要。

To address current challenges, a team of researchers led by Professor Beom-Kyeong Park recently conducted a study aimed at enhancing the performance of LSM–YSZ electrodes in SOFCs. Their research, available online since March 22, 2024, and published in Volume 36 of the Journal of Advanced Materials on June 20, 2024, focused on improving LSM–YSZ electrodes using nanocatalysts such as praseodymium oxide (PrOx). These catalysts, known for their high surface area-to-volume ratios, were employed to enhance the efficiency of the ORR.

为了应对当前的挑战,由朴範京教授领导的研究团队最近进行了一项研究,旨在改善SOFC中LSM-YSZ电极的性能。他们的研究可自2024年3月22日起在网上查询,并于2024年6月20日在《先进材料》第36卷上发表,重点是使用钕氧化物(PrOx)等纳米催化剂改进LSM-YSZ电极。这些催化剂以高比表面积与体积比而闻名,可用于增强ORR的效率。

Using cathodic electrochemical deposition (CELD), the research team efficiently deposited PrOx nanocatalysts onto LSM-YSZ electrodes in less than four minutes without requiring heat treatment. Prof. Park highlighted the significance, stating, "We harness the outstanding catalytic properties of PrOx to notably enhance the ORR activity of LSM–YSZ electrodes. The CELD method provides a rapid and cost-effective solution, feasible under standard operating conditions."

使用阴极电化学沉积(CELD),研究团队在不需要热处理的情况下,在不到四分钟的时间内高效沉积PrOx纳米催化剂于LSm-YSZ电极上。朴教授强调了其显着性,称"我们利用PrOx的卓越催化性能显著增强了LSM-YSZ电极的ORR活性。CELD方法提供了一种快速和经济的解决方案,可在标准操作条件下实现。"

The study demonstrated significant enhancements in SOFC electrode performance with PrOx coating, showing an 89% resistance reduction at high temperatures sustained over 400 hours. Achieving 418 mW cm−2 peak power density at 650°C surpassed other cathodes. Research also explored (Pr,Ce)Ox multicomponent coatings via electrochemical deposition, offering avenues for further optimization.

该研究表明,在使用PrOx涂层的SOFC电极中显着提高了性能,在高温下持续了400小时以上,极化阻力降低了89%。在650°C时达到418 mW cm−2的峰值功率密度超过了其他阴极。研究还探讨了(Pr,Ce)Ox多组分涂层的电化学沉积,为进一步优化提供了途径。

Prof. Park emphasizes the far-reaching implications of their research, stating, "By significantly enhancing electrode performance and durability, our method could pave the way for wider adoption of SOFCs in energy conversion and storage systems. This advancement holds immense promise for applications requiring reliable and sustainable power generation. It offers a pathway to mitigate greenhouse gas emissions and enhance global energy security."

朴教授强调了他们研究的深远影响,称"通过显著提高电极性能和耐久性,我们的方法可能为SOFC在能源转换和储存系统中的更广泛应用铺平道路。这一进步在需要可靠和可持续的发电的应用中有着巨大的潜力,可以为减轻温室气体排放和增强全球能源安全提供一种途径。"

This innovative approach to creating high-performance energy devices, including all-ceramic materials, presents a promising future for clean energy technology.

利用这种创新方法来创建高性能能源设备,包括全陶瓷材料,为清洁能源技术带来了有前途的未来。

Reference

来源Sengenics

Title of original paper: Revitalizing Oxygen Reduction Reactivity of Composite Oxide Electrodes via Electrochemically Deposited PrOx Nanocatalysts

原论文标题:通过电化学沉积的PrOx纳米催化剂为复合氧化物电极注入新生

Journal: Advanced materials

期刊:《先进材料》

DOI:

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SOURCE Pusan National University

机构来源:釜山国立大学

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