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

Submitted by cheukllui3 on
Neutron Scattering
Physics
Understanding complex materials through neutron scattering
Prof Wang
Professor Xunli Wang

Breakthroughs in materials development, which are essential for advances in technology, are based on scientists’ understanding of material structure and dynamics. Neutron scattering is one of the most powerful techniques for exploring the nature of materials. At CityU, an expert in neutron-scattering measurements has applied this state-of-the-art experimental technique to find out the deformation and transformation behaviours in complex materials, in particular at ultra-low temperatures, opening up a new area of materials research. 

“Neutron scattering is like a giant microscope,” explained Professor Xunli Wang, Chair Professor and Head of the Department of Physics, and also a Fellow of the Neutron Scattering Society of America. “It can reveal the structure and dynamics of a material, such as how the atoms are packed and how they move, thus enhancing our understanding of a material’s properties. It can be applied to physics, chemistry, biology, biomedical science, materials science and engineering.”

A giant microscope for materials
 

Neutrons are uncharged particles, so they can easily pass through material. The ways in which they bounce off a material and scatter provide scientists with important information about the material’s structure and properties. 

For example, experimental studies on the physical properties of amorphous materials have been very difficult owing to their disordered atomic arrangement. But using the neutron-scattering technique, Professor Wang led an international research team to overcome this challenge, and measured the atomic dynamics in zirconium-copper-aluminium metallic glass. They demonstrated the existence of high-frequency transverse phonons in metallic glass for the first time. Their findings have provided new insight into understanding the atomic structure-dynamics relationship in disordered materials.

Unveiling HEA deformation at ultra-low temperature
 

With the neutron-scattering instrumentation, Professor Wang and his team also discovered that high-entropy alloys (HEAs), a new class of structural materials consisting of multiple principal elements, exhibit exceptional mechanical properties at ultra-low temperatures owing to the coexistence of multiple deformation mechanisms. They revealed the sequence of deformation mechanisms in HEAs at ultra-low temperatures for the first time, opening up new terrain that very few have examined. 

Professor Wang was awarded the Croucher Senior Research Fellowship 2021 and will use the grant to conduct an in situ neutron diffraction study to pursue his research on phase transformation and deformation behaviours in HEAs at ultra-low temperatures. 

Advantage of close proximity to a neutron source facility
 

Riding on Hong Kong’s proximity to the China Spallation Neutron Source (CSNS), Professor Wang has dedicated his efforts to establishing Hong Kong as a hub for neutron-scattering science in the region. 

 

instrument
The multiphysics instrument supported by Professor Wang’s CRF project being installed in the CSNS. 

 

Therefore, he and his collaborators have supported the construction of a multiphysics instrument (a total scattering diffractometer) at the CSNS, with the support of the Collaborative Research Fund (CRF), in exchange for dedicated access to a suite of instruments there. “This will greatly enhance education and research activity in Hong Kong and encourage the rapid growth of a strong user community,” he said. 

Promoting neutron-scattering research 
 

Professor Wang and Professor Hesheng Chen, of the Institute of High Energy Physics of the Chinese Academy of Sciences (CAS), co-founded the Joint Laboratory on Neutron Scattering at CityU, with sponsorship from the CAS and the Croucher Foundation, to carry out a variety of cutting-edge research projects. Supported by Joint Laboratory Funding from the University Grants Committee, Professor Wang and his collaborators are developing an isotope labelling platform for functional materials, which will enable precise structure identification at the CSNS. The project aims to enhance the research infrastructure of Hong Kong laboratories, utilising the neutron source at CSNS to study structural and energy materials.  

Previously, with the support of the Croucher Foundation, Professor Wang started the biennial Croucher Summer Course on Neutron Scattering. “I enjoy the interaction with young researchers from different backgrounds,” he said. “By boosting collaboration between the Hong Kong scientific community and the CSNS and nurturing more scientists to work in neutron scattering, we hope Hong Kong can benefit from the enhancement of this science and technology research.”

 

This research article originated from CityU RESEARCH.

金樽国际娱乐| 嘉定区| 博狗百家乐真实| 威尼斯人娱乐网假吗 | 永利高平台| 百家乐官网是娱乐场最不公平的游戏 | 网上百家乐返水| 百家乐官网www| 御金娱乐| 鸟巢百家乐的玩法技巧和规则| 百家乐官网赌博现金网平台排名| 博之道百家乐的玩法技巧和规则| 百家乐官网筹码素材| 百家乐官网群1188999| 爱赢娱乐| 百家乐算牌e世博| 网上百家乐官网哪家最好| 大发888游戏平台hg| 百家乐网上真钱麻将| 多伦多百家乐官网的玩法技巧和规则| 足球投注网| 威尼斯人娱乐场老品牌| 滨海湾百家乐娱乐城| 香港百家乐官网马书| 丹阳棋牌游戏中心| 什么是百家乐官网的大路| 林周县| tt娱乐城clega| 大发888官方免费下载| 百家乐哪里可以玩| 百家乐官网最新赌王| 大西洋百家乐的玩法技巧和规则| 做生意门朝东好吗| 百家乐官网太阳城| 百家乐官网庄家提成| 皇冠网络刷qb软件| 24鸡是什么命| 百家乐官网博百家乐官网| 百家乐官网赌博论谈| 零点棋牌下载| 大发888下载大发888游戏平台|