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
Atomic, Molecular, and Optical Physics
Physics
Generating ultra-violet lasers with near-infrared light through “domino upconversion” of nanoparticles

Strong and coherent ultraviolet light emission devices have enormous medical and industrial application potential, but generating ultraviolet light emission in an effective way has been challenging. Recently, a collaborative research team co-led by researchers from City University of Hong Kong (CityU) developed a new approach to generate deep-ultraviolet lasing through a “domino upconversion” process of nanoparticles using near-infrared light, which is commonly used in telecommunication devices. The findings provide a solution for constructing miniaturized high energy lasers for bio-detection and photonic devices.

In the world of nanomaterials, “photon upconversion” means that when nanomaterial is excited by light or photons with a long wavelength and low energy, it emits light with a shorter wavelength and higher energy, such as ultraviolet light.

Challenge in achieving photon upconversion
 

Photon upconversion characterised by high-energy emission upon excitation of lower-energy photons is of exceptional interest among scientists. This is because it holds potential for cost-effective construction of miniaturised deep-ultraviolet emission devices, which have enormous medical and industrial application potential, such as microbial sterilisation and biomedical instrumentation. However, the photon upconversion process has limited flexibility, as it occurs mainly in special lanthanide ions comprising fixed sets of energy levels.

A research team co-led by Professor Feng Wang, from Department of Materials Science and Engineering, and Professor Sai-tak Chu, from Department of Physics at CityU, together with Dr Limin Jin from the Harbin Institute of Technology (Shenzhen), overcame the obstacle by introducing a “domino upconversion” tactic.

Special structural design of nanopracticles
 

Domino upconversion is like a chain reaction, in which energy amassed in one upconversion course triggers another succeeding upconversion process. By using a doughnut-shaped microresonator, incorporated with specially designed “upconversion nanoparticles”, the team successfully generated high-energy, deep-ultraviolet light emission at 290nm by excitation of low-energy infrared photons at 1550nm.

“As the excitation wavelength was in the telecommunication wavelength range, the nanoparticles can be readily used and integrated into existing fibre-optic communication and photonic circuits without complicated modification or adaptation,” said Professor Wang. The findings were published in the journal Nature Communications, titled “Ultralarge anti-Stokes lasing through tandem upconversion”.

lasers
a) Schematic design of a NaYF4:Yb/Tm@NaErF4:Ce@NaYF4 core–shell–shell nanoparticle for domino upconversion (left panel) and the proposed energy transfer mechanism in the nanoparticle. b) A high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) image of the NaYF4:Yb/Tm@NaErF4:Ce@NaYF4 nanoparticles, highlighting the layered structure.

The idea of constructing “domino upconversion” was inspired by a previous study of energy transfer in core-shell nanoparticles by Professors Wang and Chu. The core-shell structure design of the nanoparticle allows the multiphoton luminescence process in erbium (Er3+) ions. By adapting a similar synthetic protocol, the team successfully constructed “core-shell-shell” nanoparticles through a wet-chemistry method to explore the energy-transfer mechanism of lanthanide ions, including thulium (Tm3+) ions.

Doughnut-shaped microresonator
 

Through the careful design of doping composition and concentration in different layers or shells of the upconversion nanoparticles, the team successfully achieved a tandem combination of Er3+ and Tm3+ ions-based upconversion processes (domino upconversion). In the experiment, the Er3+ ions contained in the outer shell responded to 1550 nm near-infrared photon excitation, a wavelength located in the telecommunication range. By incorporating the nanoparticles into a doughnut-shaped microresonator cavity, the team further generated a high-quality ultraviolet microlaser, demonstrating lasing action at 289 nm by 1550 nm excitation.

“The upconversion nanoparticles act as “wavelength converters” to multiply the energy of incident infrared photons,” explained Professor Wang. He expects the findings to pave the way for the construction of miniaturised short-wavelength lasers and says they may inspire new ideas for designing photonic circuits. He added that the miniaturised ultraviolet laser using this domino upconversion technology can provide a platform for sensitive bio-detection, such as the detection of cancer cell secretion, by monitoring the lasing intensity and threshold, which offers great biomedical application potential in the future.

lasers
From left to right: Dr.  Tianying Sun, Professor Feng Wang, Professor Sai-tak Chu and Dr . Yuhua Li . Their “domino upconversion” process was inspired by their previous collaborative study on energy transfer in core-shell nanoparticles. 

The co-first authors of the research are Dr.  Tianyin Sun and Dr.  Bing Chen, from the Department of Materials Science and Engineering at CityU. Other team members included Miss Yang GuoMiss Qi ZhuDr.  Jianxiong Zhao and Dr.  Yuhua Li from CityU, and researchers from Sun Yat-sen University, Shenzhen University and Harbin Institute of Technology (Shenzhen). This work was supported by the National Natural Science Foundation of China, the Research Grants Council of Hong Kong, and the Shenzhen Fundamental Research Fund.

 

This research article originated from CityU Research Stories.

百家乐官网专业赌徒| 网页百家乐游戏| 大发888.com| 乐百家乐官网彩现金开户| 德州百家乐赌博规则| 杨浦区| 足球比分直播| 百家乐官网赌场方法| 大发888资讯网net| 恒丰百家乐官网的玩法技巧和规则 | 扑克王百家乐的玩法技巧和规则| 安岳县| 百家乐官网庄闲和的概率| 威尼斯人娱乐城官方网址| 大发888下载 34| 皇室百家乐官网的玩法技巧和规则| 太子百家乐娱乐城| 都坊百家乐官网的玩法技巧和规则| 足球网| 百家乐赌场筹码| 百家乐官网赌场代理| 棋牌网| 百家乐官网2号死机| 大发888游戏官方下载客户端| 金冠百家乐官网的玩法技巧和规则| 大发888九州娱乐城| 真人百家乐打法| 百家乐官网赌具哪里最好| 百家乐中的小路怎样| 百家乐官网平台有什么优惠| 皇冠足球投注| 百家乐赢钱心得| 打百家乐官网最好办法| 大发888 894| 澳门百家乐大小| 24山水口决阳宅| 有关百家乐官网玩家论坛| 百家乐赌博租| 百家乐官网赌博技巧论坛| 网络赌博| 百家乐博彩优惠论坛|