波音游戏源码-波音博彩公司评级_百家乐园天将_新全讯网3344111.c(中国)·官方网站

Sunday, June 22, 2025

Researcher develop antenna technology for 6G communications

Technology that could revolutionize the future of wireless communications.

A research team at City University of Hong Kong (CityUHK) has developed an antenna technology that could revolutionise the future of wireless communications, particularly for the upcoming 6th generation (6G) networks. The novel metasurface antenna is capable of simultaneously generating and controlling multiple frequency components through software.

- Advertisement -
Explore more ..
Silver bar

The strongest silver ever

Promising new class of super-strong and conducting materials.

Scientists have created the strongest silver ever, 42% stronger than the previous record. They also discovered a way to strengthen metals at the nanoscale while preserving electrical conductivity. This breakthrough could lead to a new class of industrial materials that combine high strength with efficient electricity flow

Kawasaki unveils hydrogen-powered robotic horse that you can ride

Meet CORLEO: Kawasaki’s Robotic Horse of the Future

Revolutionizing adventure with four legs, hydrogen power, and next-level terrain agility

Kawasaki introduces CORLEO, a trailblazing robotic horse built for off-road thrill-seekers. With four agile robotic legs, a hydrogen-powered engine, and adaptive terrain hooves, CORLEO delivers a smooth, responsive ride over mountains, rubble, and rocky trails. Riders can control it using intuitive weight shifts and handlebars. Enhanced by shock absorption, a high-tech dashboard, and illuminated night navigation. Designed to merge sustainability with performance, CORLEO is more than a machine—it’s a bold step into the future of mobility. Saddle up and explore the wild like never before.

Nonlinear superconducting resonator circuit for investigating dissipative phase transitions. 2025 EPFL/Guillaume Beaulieu - CC-BY-SA 4.0

Breakthrough in Quantum Phase Transitions Advances Quantum Technologies

EPFL Researchers Observe First- and Second-Order Dissipative Phase Transitions

EPFL researchers have experimentally observed both first- and second-order dissipative phase transitions (DPTs) in a superconducting Kerr resonator. By introducing a two-photon drive, they precisely controlled quantum state transitions, revealing phenomena like squeezing, hysteresis, and critical slowing down. Their findings confirm theoretical predictions and enhance understanding of quantum systems. This breakthrough could lead to improved quantum computing error correction and ultra-sensitive quantum sensors. The study highlights the power of interdisciplinary collaboration, merging experimental physics, theory, and engineering to push the boundaries of quantum science.

photonic-chip-based traveling-wave parametric amplifier (TWPA)

Ultra-Compact Optical Amplifier Revolutionizes Data Transmission

Gallium Phosphide-Based TWPA Achieves Unprecedented Broadband Gain

Researchers from EPFL and IBM have developed a groundbreaking photonic-chip-based traveling-wave parametric amplifier (TWPA) that offers ultra-broadband optical signal amplification in a compact form. Using gallium phosphide-on-silicon dioxide technology, the amplifier delivers over 10 dB gain across 140 nm—three times the bandwidth of conventional EDFAs. Its strong optical nonlinearity boosts signals efficiently while minimizing noise. This innovation enhances optical networks, AI data centers, and precision sensing applications, marking a major step forward in high-speed data transmission and next-generation photonics.

- Advertisement -
亚洲顶级赌场第一品牌| 德州扑克 教学| 大赢家百家乐官网娱乐| 下载百家乐棋牌大厅| 百家乐电脑游戏高手| 高手百家乐赢钱法| 大发888真钱游戏下载官网| 欢乐谷娱乐城| 百家乐官网赚水方法| 百家乐之三姐妹赌博机| 金盛娱乐| 罗盘24山珠宝火坑| 威尼斯人娱乐场注册| 百家乐官网永利娱乐城| 川宜百家乐软件| 波克城市棋牌下载| 百家乐官网机械投注法| 澳门百家乐路单| 网上百家乐官网哪家最好| 最新百家乐官网的玩法技巧和规则 | 网上的百家乐怎么才能赚钱| 利记国际娱乐| 网上百家乐玩法| 大发888娱乐游戏博彩| 百家乐官网平的概率| 大发888备用| 百家乐官网真人游戏网上投注 | 百家乐官网只打一种牌型| 百家乐二人视频麻将| 大发888游戏平台17| 八卦24山| 百家乐官网路单资料| 新澳博百家乐娱乐城| 网上百家乐官网平台下载| 海威百家乐官网赌博机| 摩纳哥百家乐的玩法技巧和规则 | 百家乐投法| 网上百家乐官网| 皇冠开户网| 在线百家乐大家赢| 百家乐官网摇色子网站|