百家乐怎么玩-澳门百家乐官网娱乐城网址_网上百家乐是不是真的_全讯网888 (中国)·官方网站

CityU achieves major breakthrough in highly efficient electrocatalyst for clean energy

 

A research team led by City University of Hong Kong (CityU) has achieved a groundbreaking advancement in nanomaterials by successfully developing a highly efficient electrocatalyst which can enhance the generation of hydrogen significantly through electrochemical water splitting.  

This major breakthrough has great application potential for the clean energy industry.

prof zhang hua cityu
Professor Zhang Hua and his team at City University of Hong Kong recently developed a highly efficient electrocatalyst which can enhance the generation of hydrogen significantly through electrochemical water splitting. (Credit: City University of Hong Kong)

Professor Zhang Hua, Herman Hu Chair Professor of Nanomaterials at CityU, and his team have developed an electrocatalyst by using the transition-metal dichalcogenide (TMD) nanosheets with unconventional crystal phases as supports. The electrocatalyst exhibits superior activity and excellent stability in electrocatalytic hydrogen evolution reaction in acidic media.

“Our research finding is significant in the sense that the hydrogen generated by electrochemical water splitting is regarded as one of the most promising clean energies to replace fossil fuels in the near future, reducing environmental pollution and the greenhouse effect,” said Professor Zhang.

This important finding has been published in the prestigious journal Nature with the title of “Phase-dependent growth of Pt on MoS2 for highly efficient H2 evolution”.

Professor Zhang said the key to the research on electrocatalytic water splitting is to develop highly efficient and stable catalysts. It is of great significance to choose a suitable support to improve the activity and stability of catalysts during the process.

As an emerging two-dimensional (2D) material, TMD nanosheets have been of great interest among researchers because of their unique physical and chemical properties.  It has been found that phase is an extremely important factor that determines the properties and functions of TMD nanosheets. For example, molybdenum disulfide (MoS2) with the conventional 2H phase exhibits a semiconductor property, while MoS2 with unconventional 1T or 1T′ phase shows metallic or semi-metallic property, thus possessing good conductivity. However, the production of unconventional-phase TMD nanosheets with high phase-purity and high quality remains challenging. The research on the effect of the TMD crystal phase on the growth of other materials is still at an early stage.

zhang hua
The team develops novel catalysts with superior efficiency and high stability during the electrocatalytic hydrogen evolution reaction.
(Credit: City University of Hong Kong)

In recent years, Professor Zhang’s research team has developed a number of new methods, such as solid-gas reactions and salt-assisted synthesis, and has successfully prepared a number of high phase-purity and high-quality TMD crystal materials with unconventional 1T′ phase. Owing to their unique semi-metallic properties, these nanomaterials have great potential in applications in the fields of optoelectronic devices, catalysis, energy storage and superconductivity.

In this research, the team successfully developed a new method to prepare TMD nanosheets with unconventional phases. They also investigated the crystal phase-dependent growth of noble metals on 1T′-TMD and 2H-TMD nanosheets. They found that using the conventional 2H-TMD as a template, it facilitates the epitaxial growth of platinum (Pt) nanoparticles, whereas the unconventional 1T′-TMD template supports single-atomically dispersed Pt atoms (s-Pt). Based on these findings, the team developed the single-atomically dispersed Pt atoms/1T′ phase molybdenum disulfide (s-Pt/1T′-MoS2) catalyst.

To overcome the mass transport limitation of Pt-based catalysts in electrocatalytic hydrogen evolution reactions in acid media, the team adopted an advanced floating electrode technology for testing. Their experimental results found that the s-Pt/1T′-MoS2 catalyst exhibited a high mass activity of 85±23 A  at an overpotential of ?50 mV and a mass-normalized exchange current density (127 A mgPt-1). Besides, the catalyst can work stably for 500 hours in a proton exchange membrane water electrolyser, showing promising application potential.

The team systematically investigated the phase-dependent growth of noble metals on 1T′-TMD and 2H-TMD nanosheets, and demonstrated that 1T′-TMD nanosheets can be an effective supports for catalysts.

“The synthesised new electrocatalyst exhibits superior activity and excellent stability in electrocatalytic hydrogen evolution reaction in acidic media, and it will play an extremely important role in the development of clean energy in the future,” said Dr Shi Zhenyu, postdoc at the Department of Chemistry and the first author of the paper.  

The findings have expanded the scope of “Phase Engineering of Nanomaterials” (PEN), paving a new way for the design and synthesis of highly efficient catalysts. Professor Zhang said that in the future, the team will continue the research on 1T′-TMD-based catalyst and its prospects in industrial application, in order to contribute to clean energy and sustainable development.

zhang hua
Professor Zhang Hua (second from right, front row) and his research team, including Dr Shi Zhenyu (first from right, front row), at CityU. (Credit: City University of Hong Kong)

The corresponding authors are Professor Zhang and Professor Anthony R. J. Kucernak from the Department of Chemistry, Imperial College London. This research project brought together collaborators from universities and research institutes in Hong Kong, mainland China, Singapore and the UK, showing the importance of international collaboration in achieving scientific breakthroughs.

 

 

Contact Information

Back to top
百家乐官网五星宏辉怎么玩| 娄烦县| 如何玩百家乐官网扑克| 百家乐官网娱乐代理| 678百家乐博彩赌场娱乐网规则| 德州扑克大小顺序| 尊龙百家乐官网娱乐平台| 利来百家乐娱乐| 赌百家乐官网大小点桌| 赌场百家乐实战| 叶氏百家乐官网平注技巧| 免费百家乐预测工具| 做生意风水| 真钱游戏网| 百家乐官网桌手机套| 大发888线上娱乐城百家乐| 永发娱乐城| 24山吉凶| 网上娱乐城注册送彩金| 网上百家乐如何作假| 大发888赢钱最多的| 澳门百家乐官网怎么下载| 镇宁| 百家乐怎样捉住长开| 百家乐官网算牌e世博| 皇城百家乐官网娱乐城| 皇冠足球投注| 巴西百家乐的玩法技巧和规则| 天全县| 百家乐送彩金平台| 六合彩网页| 百家乐现金网平台排名| 百家乐官网电投软件| 大发888最新版本下载| 百家乐官网免费试玩游戏| 元游棋牌游戏大厅| 新加坡百家乐的玩法技巧和规则 | 现场百家乐官网的玩法技巧和规则| 精英百家乐现金网| 百家乐官网娱乐真人娱乐| 百家乐官网如何看面|