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

Gadgets

CityUHK Develops World-Leading Microwave Photonics Chip for High-Speed Signal Processing

LinkedIn Google+ Pinterest Tumblr

A research team led by Professor Wang Cheng from the Department of Electrical Engineering (EE) at City University of Hong Kong (CityUHK) has developed a world-leading microwave photonic chip that is capable of performing ultrafast analog electronic signal processing and computation using optics.

The chip, which is 1,000 times faster and consumes less energy than a traditional electronic processor, has a wide range of applications, covering 5/6G wireless communication systems, high-resolution radar systems, artificial intelligence, computer vision, and image/video processing.

The team’s research findings were published in the prestigious scientific journal?Nature?titled “Integrated Lithium Niobate Microwave Photonic Processing Engine”. It is a collaborative research with The Chinese University of Hong Kong (CUHK).

The rapid expansion of wireless networks, the Internet of Things, and cloud-based services has placed significant demands on underlying radio frequency systems. Microwave photonics (MWP) technology, which uses optical components for microwave signal generation, transmission, and manipulation, offers effective solutions to these challenges. However, integrated MWP systems have struggled to simultaneously achieve ultrahigh-speed analog signal processing with chip-scale integration, high fidelity, and low power.

“To address these challenges, our team developed a MWP system that combines ultrafast electro-optic (EO) conversion with low-loss, multifunctional signal processing on a single integrated chip, which has not been achieved before,”?explained Professor Wang.

Such performance is enabled by an integrated MWP?processing engine based on a thin-film lithium niobate (LN) platform capable of performing multi-purpose processing and computation tasks of analog signals.

“The chip can perform high-speed analog computation with ultrabroad processing bandwidths of 67 GHz and excellent computation accuracies,” said?Feng Hanke, PhD student of EE and the first author of the paper.all

The team has been dedicated to researching the integrated LN photonic platform for several years. In 2018, colleagues at Harvard University and Nokia Bell labs developed the world’s first CMOS (complementary metal-oxide semiconductor)-compatible integrated electro-optic modulators on the LN platform, laying the foundation for the current research breakthrough. LN is referred to as the “silicon of photonics” for its importance to photonics, comparable to silicon in microelectronics.

Their work opens up a new research field, i.e., LN microwave photonics, enabling microwave photonics chips with compact sizes, high signal fidelity, and low latency; it also represents a chip-scale analog electronic processing and computing engine.

The paper’s first authors are Feng Hankeand Ge Tong (EE undergraduate). Professor Wang is the corresponding author. Other contributing authors include Dr Guo Xiaoqing, PhD graduate of EE; Dr Chen ZhaoxiDr Zhang KeDr Zhu Sha (also at Beijing University of Technology), Dr Sun Wenzhao (now at CityUHK (Dongguan)), EE postdocs; and Zhang Yiwen, EE PhD student; and collaborators (Wang Benshan, Professor Huang Chaoran, and Professor Yuan Yixuan) from CUHK.

Write A Comment

皇家棋牌| 金都国际娱乐| 星港城百家乐娱乐城| 大发888游戏平台dafa 888 gw| 马德里百家乐官网的玩法技巧和规则| 大发888玩法| 首席百家乐官网的玩法技巧和规则 | 什么百家乐平注法| 网上百家乐官网看牌器| 威尼斯人娱乐城演唱会| 百家乐官网视频造假| 娱乐城源码| 赌博百家乐经验网| 澳门百家乐官网棋牌游戏| 免费百家乐游戏下| 天天百家乐官网的玩法技巧和规则 | 百家乐官网注册开户送彩金| 百家乐家| 做生意 风水| 百家乐官网平台要多少钱| 大发888洗码| 沙龙百家乐娱乐场开户注册| 百家乐园36bol在线| 澳门百家乐官网下三路| 大发888游戏平台 df888ylcxz46| 百家乐路单纸下载| 百家乐官网投注方法网| 188金宝博开户| 闲和庄百家乐娱乐| 百家乐官网冼牌机| 百家乐官网断缆赢钱| 娱网棋牌官方下载| A8百家乐赌场娱乐网规则| 百家乐假在哪里| 百家乐官网韩泰阁| 大发888赢速通充值| 百家乐桌码合| 百家乐官方网址| 百家乐官网单人操作扫描道具| 现金斗地主| 大世界娱乐城真人娱乐|