Asymmetric ruthenium-iron dipole enabling fast alkaline water splitting on ruthenium-doped iron-nickel layered double hydroxides

分解水 层状双氢氧化物 兴奋剂 无机化学 材料科学 化学 催化作用 冶金 氢氧化物 光电子学 有机化学 光催化
作者
Junsheng Li,Naren Gaowa,Chunmei Tang,Lixin Xing,Ling Meng,Ning Wang,Ruiming Zhang,Siyu Ye,Liguang Wang,Lei Du
出处
期刊:Materials Reports: Energy [Elsevier BV]
卷期号:5 (3): 100359-100359 被引量:10
标识
DOI:10.1016/j.matre.2025.100359
摘要

Electrically driven water splitting is an efficient method for green hydrogen production; however, its practical application is substantially constrained by the kinetically sluggish anodic oxygen evolution reaction (OER). Ruthenium (Ru) and its oxides are widely recognized as highly active OER catalysts. Although Ru is significantly cheaper than iridium (Ir), further reducing its content remains desirable. Herein, atomically dispersed Ru is doped into iron-nickel layered double hydroxides (Ru-FeNi-LDH) to decrease the Ru usage. We found that the Ru doping limit is roughly 9 wt%, and the Ru doping content significantly alters the OER kinetics—note that the high Ru concentration remarkably damages the Ru-FeNi-LDH structure and leads to agglomeration formation. By optimizing the Ru doping content to 3.3 wt%, the Ru-FeNi-LDH presents a low overpotential of 230 mV to reach a current density of 10 mA cm -2 in 1 M KOH, which is far better than the reference FeNi-LDH (280 mV) and RuO 2 (350 mV). In the overall water splitting test, the current density of 10 mA cm -2 can be reached at a low voltage of 1.52 V, with stable operation for 80 h. Interestingly, Ru and Fe form an asymmetric Ru-Fe dipole, which is likely doped together into the LDH because the content of Fe instead of Ni is dependent on Ru content in experimental results. The electron-deficient feature of the Ru-Fe dipole thus facilitates the OER process. This work demonstrates transition metal synergy, providing a design strategy for OER and related catalysts.
最长约 10秒,即可获得该文献文件

科研通智能强力驱动
Strongly Powered by AbleSci AI
科研通是完全免费的文献互助平台,具备全网最快的应助速度,最高的求助完成率。 对每一个文献求助,科研通都将尽心尽力,给求助人一个满意的交代。
实时播报
核桃应助chen采纳,获得30
刚刚
刚刚
1秒前
1秒前
1秒前
竹林听风完成签到,获得积分20
1秒前
1秒前
1秒前
1秒前
1秒前
1秒前
2秒前
2秒前
2秒前
2秒前
2秒前
2秒前
2秒前
3秒前
3秒前
NexusExplorer应助Psycho采纳,获得10
3秒前
白日焰火完成签到,获得积分10
3秒前
清脆的秋寒完成签到,获得积分10
3秒前
4秒前
4秒前
4秒前
4秒前
liujs发布了新的文献求助10
4秒前
神秘面筋男完成签到,获得积分10
4秒前
moumou完成签到,获得积分10
4秒前
liujs发布了新的文献求助10
5秒前
liujs发布了新的文献求助10
5秒前
liujs发布了新的文献求助10
5秒前
CipherSage应助清秀的怀蕊采纳,获得10
5秒前
liujs发布了新的文献求助10
5秒前
liujs发布了新的文献求助10
5秒前
5秒前
liujs发布了新的文献求助10
5秒前
liujs发布了新的文献求助10
5秒前
小虫子完成签到,获得积分10
5秒前
高分求助中
(应助此贴封号)【重要!!请各用户(尤其是新用户)详细阅读】【科研通的精品贴汇总】 10000
An Introduction to Foreign Language Learning and Teaching 750
China Pluperfect I: Epistemology of Past and Outside in Chinese Art 520
Matrix Methods in Data Mining and Pattern Recognition Second Edition 510
Les chinois de jakarta: temples et vie collective 500
Governing Growth: Us Industrial Policy from Hamilton to Trump 500
The fast track to determining transfer functions of linear circuits: The student guide 500
热门求助领域 (近24小时)
化学 材料科学 医学 生物 纳米技术 工程类 有机化学 化学工程 生物化学 计算机科学 内科学 物理 复合材料 催化作用 细胞生物学 无机化学 光电子学 物理化学 电极 基因
热门帖子
关注 科研通微信公众号,转发送积分 7627390
求助须知:如何正确求助?哪些是违规求助? 9201950
关于积分的说明 19728471
捐赠科研通 7197314
什么是DOI,文献DOI怎么找? 3273849
关于科研通互助平台的介绍 2436168
邀请新用户注册赠送积分活动 2269930