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

Hydrogen generation breakthrough by CityU-led international collaboration holds great promise for a clean future; published in Nature

Eva Choy

 

An international research team led by Professor Zhang Hua has successfully developed a highly efficient electrocatalyst that can enhance hydrogen generation through electrocatalytic water splitting.
An international research team led by Professor Zhang Hua has successfully developed a highly efficient electrocatalyst that can enhance hydrogen generation through electrocatalytic water splitting.

An international team led by City University of Hong Kong (CityU) has announced a groundbreaking step forward that has added significantly to the technical know-how required to clean up the planet.

The discovery, published in one of the world’s premier science journals, Nature, centres on developing a highly efficient electrocatalyst that can enhance hydrogen generation through electrocatalytic water splitting.

Titled “Phase-dependent growth of Pt on MoS2 for highly efficient H2 evolution”, the paper was published on 13 September in London.

Cleaner energy sources are desperately needed, but the challenges in weaning the world off fossil fuels and onto more sustainable energies are enormous.

“Hydrogen generated by electrocatalytic water splitting is regarded as one of the most promising clean energies for replacing fossil fuels in the near future, reducing environmental pollution and the greenhouse effect,” said Professor Zhang Hua, Herman Hu Chair Professor of Nanomaterials at CityU, who is spearheading the research.

Professor Zhang and his research team at CityU.
Professor Zhang and his research team at CityU.

Professor Zhang’s collaborators include Professor Anthony R. J. Kucernak from the Department of Chemistry at Imperial College London and researchers from universities and research institutes in Hong Kong, mainland China, Singapore and the UK.

The critical development in the CityU-led research is establishing novel catalysts by using the transition-metal dichalcogenide (TMD) nanosheets as supports, enabling superior efficiency and high stability during the electrocatalytic hydrogen evolution reaction (HER), a vital step in electrocatalytic water-splitting, also known as the water electrolysis technique, for hydrogen production.

The team has been exploring how to enhance the performance of the HER process by engineering the crystal phase of nanomaterials for several years. Although TMD nanosheets with unconventional crystal phases possess great potential to be used as catalyst supports, fabricating such sheets pure enough for HER is far from straightforward.

The team develops novel catalysts with superior efficiency and high stability during the electrocatalytic hydrogen evolution reaction.
The team develops novel catalysts with superior efficiency and high stability during the electrocatalytic hydrogen evolution reaction.

But in this research, Professor Zhang’s team has developed a new method to prepare unconventional-phase TMD nanosheets with high phase-purity and quality. Furthermore, they have investigated the crystal phase-dependent growth of noble metals on the TMD nanosheet supports.

Technically speaking, they found that the 2H-phase template facilitates the epitaxial growth of Pt nanoparticles, whereas the 1T′-phase template supports single-atomically dispersed Pt atoms (s-Pt). The synthesised s-Pt/1T′-MoS2 serves as a highly efficient catalyst for HER and can work for 500 hours in the water electrolyser, demonstrating that 1T′-TMD nanosheets could be effective supports for catalysts.

“We will develop more efficient catalysts based on this finding and explore their applications in various catalytic reactions,” said Dr Shi Zhenyu, a postdoctoral researcher in CityU’s Department of Chemistry and the first author of the paper.

These findings expand the scope of phase engineering in nanomaterials, paving the way for the design and synthesis of highly efficient catalysts, contributing to cleaner energies and more sustainable development.

YOU MAY BE INTERESTED

Contact Information

Communications and Institutional Research Office

Back to top
缅甸百家乐赌| 皇家赌场下载| 百家乐游戏开户网址| 巨野县| 澳门百家乐官网走势图怎么看| 百家乐赌博筹码大不大| 平顺县| 娱乐场百家乐大都| 博彩资讯网| 真人百家乐的玩法技巧和规则 | 百家乐官网捡揽方法| 王子百家乐的玩法技巧和规则| 百家乐官网网络游戏信誉怎么样 | 大发888作弊| 阳宅24方位判断方法| 娱乐城873| 亚洲百家乐博彩的玩法技巧和规则| 百家乐官网款| 百家乐高手看百家乐| 百家乐官网游戏研发| 大发888yulecheng| 百家乐平注胜进与负追| 缅甸百家乐官网视频| 澳门百家乐官网有限公司| 大发888官网46| 风水24个向的意思| 博彩百家乐官网规则| 利来百家乐娱乐| 信誉百家乐博彩网| 百家乐游戏运营| 状元百家乐官网的玩法技巧和规则 | 大发888大发888官方| 威尼斯人娱乐场送18| 百家乐打连技巧| 百家乐官网路单破解器| 水果老虎机的程序| 百家乐麻将筹码币镭射贴膜| 在线百家乐博彩| 巴厘岛百家乐官网娱乐城| 新梦想百家乐官网的玩法技巧和规则 | 闲和庄百家乐官网赌场娱乐网规则|