波音游戏-波音娱乐城赌球打不开

Submitted by cheukllui3 on
Applied Physics
Physics
Sound Wave
CityU physicists discovered special transverse sound wave

Can you imagine sound travels in the same way as light does? A research team at City University of Hong Kong (CityU) discovered a new type of sound wave: the airborne sound wave vibrates transversely and carries both spin and orbital angular momentum like light does. The findings shattered scientists’ previous beliefs about the sound wave, opening an avenue to the development of novel applications in acoustic communications, acoustic sensing and imaging.  

The research was initiated and co-led by Dr. Shubo Wang, Assistant Professor in the Department of Physics at CityU, and conducted in collaboration with scientists from Hong Kong Baptist University (HKBU) and the Hong Kong University of Science and Technology (HKUST). It was published in Nature Communications, titled “Spin-orbit interactions of transverse sound”.

Beyond the conventional understanding of sound wave
 

The physics textbooks tell us there are two kinds of waves. In transverse waves like light, the vibrations are perpendicular to the direction of wave propagation. In longitudinal waves like sound, the vibrations are parallel to the direction of wave propagation. But the latest discovery by scientists from CityU changes this understanding of sound waves.

“If you speak to a physicist about airborne transverse sound, he/she would think you are a layman without training in university physics because textbooks say that airborne sound (i.e., sound propagating in the air) is a longitudinal wave,” said Dr. Wang. “While the airborne sound is a longitudinal wave in usual cases, we demonstrated for the first time that it can be a transverse wave under certain conditions. And we investigated its spin-orbit interactions (an important property only exists in transverse waves), i.e. the coupling between two types of angular momentum. The finding provides new degrees of freedom for sound manipulations.

The absence of shear force in the air, or fluids, is the reason why sound is a longitudinal wave, Dr. Wang explained. He had been exploring if it is possible to realise transverse sound, which requires shear force. Then he conceived the idea that synthetic shear force may arise if the air is discretised into “meta-atoms”, i.e. volumetric air confined in small resonators with size much smaller than the wavelength. The collective motion of these air “meta-atoms” can give rise to a transverse sound on the macroscopic scale.

sound wave
Illustration of the “meta-atom” and transverse sound.
Credit: Wang, S., Zhang, G., Wang, X. et al. / DOI number: 10.1038/s41467-021-26375-9

Conception and realisation of “micropolar metamaterial”
 

He ingeniously designed a type of artificial material called “micropolar metamaterial” to implement this idea, which appears like a complex network of resonators. Air is confined inside these mutually connected resonators, forming the “meta-atoms”. The metamaterial is hard enough so that only the air inside can vibrate and support sound propagation. The theoretical calculations showed that the collective motion of these air “meta-atoms” indeed produces the shear force, which gives rise to the transverse sound with spin-orbit interactions inside this metamaterial. This theory was verified by experiments conducted by Dr. Guancong Ma’s group in HKBU.

Moreover, the research team discovered that air behaves like an elastic material inside the micropolar metamaterial and thus supports transverse sound with both spin and orbital angular momentum. Using this metamaterial, they demonstrated two types of spin-orbit interactions of sound for the first time. One is the momentum-space spin-orbit interaction which gives rise to negative refraction of the transverse sound, meaning that sound bends in the opposite directions when passing through an interface. Another one is the real-space spin-orbit interaction which generates sound vortices under the excitation of the transverse sound.

sound wave
Negative refraction induced by the spin-orbit interaction in momentum space. Credit: Wang, S., Zhang, G., Wang, X. et al. / DOI number: 10.1038/s41467-021-26375-9
sound wave
Sound vortex generation enabled by the spin-orbit interaction in real space. Credit: Wang, S., Zhang, G., Wang, X. et al. / DOI number: 10.1038/s41467-021-26375-9

The findings demonstrated that airborne sound, or sound in fluids, can be a transverse wave and carry full vector properties such as spin angular momentum the same as light does. It provides new perspectives and functionalities for sound manipulations beyond the conventional scalar degree of freedom.

“This is just a precursor. We anticipate more explorations of the intriguing properties of the transverse sound,” Dr. Wang said. “In future, by manipulating these extra vector properties, scientists may be able to encode more data into the transverse sound to break the bottleneck of traditional acoustic communication by normal sound waves.”

The interaction of spin with orbital angular momentum enables unprecedented sound manipulations via its angular momentum. “The discovery may open an avenue to the development of novel applications in acoustic communications, acoustic sensing and imaging,” he added.

Dr. Wang is the first author and the corresponding author of the paper. Dr. Ma is another corresponding author. Collaborators include Professor Jensen Li from The Hong Kong University of Science and Technology, Ms. Qing Tong, a PhD student from CityU, and other researchers from HKBU.

The work was supported by the Research Grants Council in Hong Kong and the National Natural Science Foundation of China.

sound wave
Dr. Shubo Wang from City University of Hong Kong (first from right) and his research team. Ms. Qing Tong (second from left) is a co-author of the paper. Credit: City University of Hong Kong

 

This research article originated from CityU Research Stories.

顶尖百家乐的玩法技巧和规则 | 澳门百家乐官网怎么赢钱| 百家乐官网网站新全讯网| gt百家乐官网平台假吗| 百家乐官网巴厘岛娱乐城| 百家乐官网制胜秘| 狮威百家乐娱乐网| 大发888娱乐场下载yguard| 百家乐官网技巧经| 二八杠开户| 澳门百家乐官网有没有假| 澳门百家乐娱乐城信誉如何| 御匾会娱乐城| 真人百家乐官网策略| 太阳城百家乐网址--| 南雄市| 网上百家乐官网游戏玩法| 大发888网页版免费| 镶黄旗| 百家乐路单怎样| 至尊百家乐官网下载| 大哥大百家乐的玩法技巧和规则| 大发888 大发888官网| 超级百家乐官网2龙虎斗| 百家乐如何盈利| 太阳城百家乐官网出千技术| 尊龙百家乐娱乐场开户注册| 百家乐有秘技吗| 德庆县| CEO百家乐娱乐城| 澳门百家乐官网赌博技巧| 德州扑克大师| 做生意如何风水| 伟博娱乐| 最新百家乐电脑游戏机| 百家乐官网最佳打| 360棋牌游戏大厅| 百家乐园选百利宫| 网络百家乐官网玩法| 威尼斯人娱乐城反水| 百家乐官网博之道娱乐城|