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

Novel meta-lens revolutionises conventional Vacuum UV optics technology

Mirror Fung

 

Profs
Professor Tsai Din-Ping (right) and Dr Chen Mu-Ku.

 

A research team co-led by City University of Hong Kong (CityU) has successfully developed a novel Vacuum Ultra-Violet (VUV) meta-lens which can generate and focus the VUV light, a disruptive technology for the VUV optics market.

VUV is used in semiconductor manufacturing, photochemistry and materials science. The focused VUV light source is strongly needed for the nanolithography, material processing, advanced manufacture, and other industrial areas.

However, it has been costly to work with. VUV with wavelengths between 100 to 200 nanometers (nm), is strongly absorbed by the oxygen in air, and requires a vacuum chamber or other specialised environment. Conventionally, very bulky and expensive system with special and rare nonlinear crystals are used for generating and focusing of VUV light.

In addition, virtually almost all types of glass used for conventional lenses are unsuitable for the VUV due to their strong absorption in this region. The few VUV-transmittable materials currently used for lenses are comparably fragile, placing practical limits on thin lens fabrication and design.

Professor Tsai Din-Ping, Chair Professor of the Department of Electrical Engineering (EE) and Dr Chen Mu-Ku, Research Assistant Professor of EE, have designed and fabricated an array of the 150 nm length triangle shape zinc oxide nano-antenna to form a VUV meta-lens.

“We have developed a meta-lens with intricate nano-structures on zinc oxide thin film. It is capable of converting and focusing VUV light. This meta-lens provides a compact method for nonlinear VUV generation and focusing of the generated light,” said Professor Tsai, one of the corresponding authors of the paper recently published in Science Advances titled “Vacuum ultraviolet nonlinear metalens”.

The new VUV meta-lens in a 45 micro-meter diameter can convert UV light with 394 nm wavelength into VUV light with 197 nm wavelength, and focus the VUV light on a small spot less than 2 millionths of a meter in diameter. Tests at Rice University in the US demonstrating a focused light spot with the enhanced power density by 21 times.

“Our VUV meta-lens is compact, lightweight, effective, and can be mass produced by semiconductor electronics fabrication process. This novel and disruptive meta-device could revolutionise the conventional VUV optics technology and its market,” Professor Tsai said.

The meta-lens allows substantial streamlining of VUV system design and facilitating more advanced applications. This work provides a useful platform for developing low-loss VUV components and increasing the accessibility of the VUV regime.

This research is funded by the Area of Excellence Project (AoE), University Grants Committee/Research Grants Council of Hong Kong SAR government. Professor Tsai is the Project Coordinator of the AoE project “Meta-optics, Meta-acoustics and Meta-devices.”

Co-authors of the paper include Professor Naomi Halas, Professor Peter Nordlander, Dr Michael Semmlinger, Dr Ming Zhang, Catherine Arndt, Dr Benjamin Cerjan and Dr Jian Yang of Rice University in the US; Dr Ming-Lun Tseng of National Yang Ming Chiao Tung University in Taiwan; Tzu-Ting Huang and Dr Cheng-Hung Chu of Academia Sinica in Taiwan; Dr Hsin-Yu Kuo of National Taiwan University; and Dr Vin-Cent Su of National United University in Taiwan.

figure
The new meta-lens converts 394-nanometer ultraviolet (UV) light (in blue) into 197-nanometer “vacuum UV” (in pink) and focuses the VUV output on a small spot less than 2 millionths of a meter in diameter. Tiny triangular nano-resonators in precisely configured concentric circles on a microscopic disk of zinc oxide (ZnO). Several scanning electron microscopic (SEM) images of the meta-lens are shown (bottom right). Well-defined nano triangles with regularly varying rotation angles can be observed in the SEM images.

 

 

YOU MAY BE INTERESTED

Contact Information

Communications and Institutional Research Office

Back to top
超级百家乐2龙虎斗| 玩百家乐最好方法| 爱赢娱乐城开户| 百家乐官网AG| 大发888娱乐场下载 zhldu| 百家乐官网赌场大赢家| 二八杠玩法| 百家乐官网微笑玩| 稻城县| 新葡京百家乐现金网| 太阳城娱乐网| 网上百家乐庄家有赌场优势吗| 深州市| 澳门百家乐赌技巧| 筹码币百家乐官网麻将| 最大的百家乐网站| 百家乐官网白茫茫| 波音网址| 网络百家乐玩法| 澳门百家乐官网是怎样赌| 大发888游戏官方| 淘宝博百家乐官网的玩法技巧和规则 | 大发888官方游戏平台| 风水97年农历6月24八字| 百家乐转盘| 678百家乐官网博彩娱乐平台| 澳门百家乐765118118| 解析百家乐投注法| 怎样玩百家乐官网看路| 百家乐讲谈| 网上百家乐追杀| 澳门玩百家乐官网赢1000万| 太阳城线上娱乐| 有钱人百家乐的玩法技巧和规则 | 澳门赌博攻略| 闲和庄百家乐娱乐城| 百家乐官网哪家赌安全| 足球赌球网| 至尊百家乐娱乐场开户注册| 百家乐技巧大全| 鼠和猴做生意招财|