Global EditionASIA 中文雙語Fran?ais
    China
    Home / China / Innovation

    Fudan researchers develop novel catalyst for cost-effective green hydrogen

    By China Daily in Shanghai | chinadaily.com.cn | Updated: 2025-02-14 15:31
    Share
    Share - WeChat
    Schematic illustration of the design concept for ripening-induced embedded catalysts. [Photo provided to chinadaily.com.cn]

    A collaborative research team from Fudan University has achieved a breakthrough in green hydrogen production efficiency. The team's findings, published in the journal Science on Feb 14, detail the development of a novel embedded catalyst that significantly enhances the stability and performance of Proton Exchange Membrane Water Electrolyzer (PEMWE) technology, a cornerstone for generating green hydrogen.

    The increasing demand for sustainable energy solutions has positioned green hydrogen as a promising energy carrier. The water electrolyzer technology, with its ability to efficiently split water into hydrogen and oxygen, plays a critical role in this domain.

    However, the technology's reliance on expensive and scarce iridium-based catalysts for the oxygen evolution reaction (OER), a crucial step in the electrolysis process, has hindered its widespread adoption. The high cost and limited availability of iridium, coupled with the suboptimal performance of existing iridium-based catalysts, have posed significant challenges to the large-scale deployment of the water electrolyzer technology systems.

    Addressing these limitations, the Fudan team, led by Zhang Bo, Xu Yifei, Duan Sai and Xu Xin, devised an innovative embedded catalyst design that enhances OER efficiency while minimizing the use of iridium.

    The team employed a novel synthesis method they term "ripening-induced embedding", drawing inspiration from the structure of teeth embedded in gums. This method facilitates the embedding of iridium oxide nanoparticles, the key catalyst material, within a cerium oxide support, akin to the teeth anchoring in gums.

    Advanced characterization techniques played a pivotal role in understanding and optimizing the catalyst's growth process. By utilizing cryo-transmission electron microscopy (CryoTEM) and cryo-electron tomography (CryoET), researchers could visually track the growth and embedding of iridium oxide nanoparticles within the cerium oxide support, capturing the real-time dynamics of the synthesis process.

    The insights gained from these imaging techniques, combined with theoretical calculations using all-atom kinetic Monte Carlo (KMC) simulations, revealed the effectiveness of ultrasonic and heating treatments in accelerating the growth rate of the support material.

    This precise control over both the support and catalyst growth rates proved crucial in achieving the optimal embedding of iridium oxide nanoparticles, ensuring their stability and preventing detachment during electrolysis.

    The meticulous design ensured the optimal embedding of iridium oxide within the cerium oxide support and yielded a highly stable and efficient catalyst. Rigorous testing under the water electrolyzer technology operating conditions for an extended period of 6,000 hours demonstrated the catalyst's exceptional durability. It exhibited minimal voltage decay and maintained high activity, surpassing international performance standards.

    Commenting on the significance of the breakthrough, Professor Zhang said, "Our findings mark a significant step towards commercially viable green hydrogen production. This catalyst design not only addresses the limitations of existing catalysts but also paves the way for the development of more cost-effective and efficient the water electrolyzer technology systems."

    The team's research, backed by the National Natural Science Foundation of China and other key funding initiatives, holds substantial promise for the future of green hydrogen production.

    Their plans include refining the catalyst research, exploring other cost-effective materials, and collaborating with industrial partners to accelerate the technology's commercialization and contribute to China's carbon neutrality goals.

    Luo Bin contributed to this story.

    Top
    BACK TO THE TOP
    English
    Copyright 1995 - . All rights reserved. The content (including but not limited to text, photo, multimedia information, etc) published in this site belongs to China Daily Information Co (CDIC). Without written authorization from CDIC, such content shall not be republished or used in any form. Note: Browsers with 1024*768 or higher resolution are suggested for this site.
    License for publishing multimedia online 0108263

    Registration Number: 130349
    FOLLOW US
     
    无码人妻精品中文字幕| 久久无码AV中文出轨人妻| 最近2019中文字幕电影1| 国产精品亚韩精品无码a在线| 中文字幕一区一区三区| 亚洲无码黄色网址| 日韩av无码一区二区三区 | 国精无码欧精品亚洲一区| 欧美日韩中文字幕在线看 | 欧美成人中文字幕在线看| 少妇无码?V无码专区在线观看| 无码精品人妻一区二区三区中| 中文字幕无码一区二区免费| 最近中文国语字幕在线播放| 综合国产在线观看无码| 国产99久久九九精品无码| 无码AV岛国片在线播放| 一本一道av中文字幕无码| 亚洲国产人成中文幕一级二级| √天堂中文www官网| 中文字幕Av一区乱码| 亚洲精品欧美精品中文字幕| 99无码熟妇丰满人妻啪啪| 韩国免费a级作爱片无码| 少妇人妻偷人精品无码视频新浪| 中文字幕无码无码专区| 一本加勒比hezyo无码专区| 国产成人无码区免费内射一片色欲| 最近2018中文字幕免费视频| 色综合久久最新中文字幕| 亚洲乳大丰满中文字幕| 欧美 亚洲 日韩 中文2019| 亚洲?V无码乱码国产精品| 人妻系列无码专区久久五月天| 精品一区二区无码AV| 亚洲Aⅴ无码一区二区二三区软件 亚洲?V无码乱码国产精品 | 小13箩利洗澡无码视频网站| 亚洲VA中文字幕无码毛片| 免费人妻无码不卡中文字幕系| 人妻少妇乱子伦无码视频专区 | 国产午夜无码精品免费看动漫|