男女羞羞视频在线观看,国产精品黄色免费,麻豆91在线视频,美女被羞羞免费软件下载,国产的一级片,亚洲熟色妇,天天操夜夜摸,一区二区三区在线电影
Global EditionASIA 中文雙語Fran?ais
China
Home / China / Innovation

Chinese scientists make breakthrough in ultra-wideband photonic-electronic 6G communication

Xinhua | Updated: 2025-08-29 09:43
Share
Share - WeChat

BEIJING -- Chinese scientists have made a breakthrough in ultra-wideband photonic-electronic integrated technology for 6G wireless communication, according to Peking University (PKU).

By leveraging photonic-electronic hybrid integration, a joint research team from PKU and City University of Hong Kong successfully developed an ultra-wideband system capable of high-speed, frequency-tunable wireless transmission -- a world-first achievement that is expected to enhance the reliability and efficiency of future 6G networks.

The team's findings were published online in Nature on Wednesday.

As the next generation of wireless communication, 6G requires high-speed transmission across diverse frequency bands in varying scenarios. However, conventional electronic hardware is typically limited to specific frequency ranges due to differences in design, structure and materials, making it difficult to achieve cross-band or full-spectrum operations.

To address this challenge, the team spent four years developing an ultra-wideband photonic-electronic integrated system.

This system supports high-speed transmission at any frequency between 0.5 GHz and 115 GHz -- a globally leading capability for full-spectrum compatibility. It also features flexible tunability, allowing dynamic switching to secure frequencies when interference occurs, thereby improving communication reliability and spectral efficiency.

"This technology is like building a super-wide highway where electronic signals are vehicles and frequency bands are lanes," explained Wang Xingjun, deputy dean of the School of Electronics at PKU. Previously, signals were crowded into one or two lanes, but now many lanes are available. If one lane is blocked, signals can switch flexibly to another, ensuring faster and smoother communication, Wang said.

Experiments have demonstrated that the system is capable of achieving wireless transmission rates exceeding 100 Gbps, which is sufficient to stream 1,000 simultaneous 8K ultra-high-definition videos, meeting the peak rate requirements of 6G while maintaining consistent performance across the full frequency range.

The research team is now working on increasing the system's integration level to develop intelligent photonic-electronic modules adaptable to various other systems, with aims to minimize size, weight and power consumption.

According to Wang, the future 6G network will feature ubiquitous wireless connectivity. Enhanced with AI algorithms, this new system could enable smarter and more flexible networks capable of real-time data transmission, precise environmental sensing and automatic interference avoidance, ensuring more secure and efficient communication in complex scenarios, he said.

Top
BACK TO THE TOP
English
Copyright 1995 - . All rights reserved. The content (including but not limited to text, photo, multimedia information, etc) published in this site belongs to China Daily Information Co (CDIC). Without written authorization from CDIC, such content shall not be republished or used in any form. Note: Browsers with 1024*768 or higher resolution are suggested for this site.
License for publishing multimedia online 0108263

Registration Number: 130349
FOLLOW US
 
主站蜘蛛池模板: 皮山县| 永安市| 乌兰浩特市| 封丘县| 西宁市| 石渠县| 大渡口区| 丰原市| 仁布县| 电白县| 苏尼特右旗| 凉城县| 蒙阴县| 沙湾县| 娄烦县| 藁城市| 延庆县| 元阳县| 平泉县| 晴隆县| 正镶白旗| 年辖:市辖区| 抚松县| 宿迁市| 乳源| 永州市| 麻栗坡县| 舒兰市| 阳春市| 礼泉县| 卢湾区| 西乌珠穆沁旗| 巴东县| 十堰市| 江阴市| 桂东县| 封丘县| 永昌县| 漯河市| 阜新| 马尔康县| 民权县| 定日县| 乐业县| 曲松县| 弥勒县| 张家口市| 钟山县| 石首市| 勃利县| 来宾市| 托克逊县| 拜城县| 司法| 翼城县| 深水埗区| 略阳县| 扬中市| 拉萨市| 额敏县| 高邮市| 洞口县| 遵义县| 哈尔滨市| 贡觉县| 昭平县| 峨边| 长阳| 郯城县| 凌源市| 高密市| 讷河市| 桑日县| 永春县| 扶风县| 浦江县| 禄丰县| 沧州市| 泰兴市| 虎林市| 杭锦后旗| 湘西|