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

Research Stories

Filter by category
Filter by year
Filter by year

Organic photovoltaics (OPVs) are a promising, economical, next-generation solar cell technology for scalable clean energy and wearable electronics. But the energy conversion loss due to the recombination of photogenerated charge carriers in OPVs has hindered further enhancement of their power conversion efficiency (PCE). Recently, researchers from City University of Hong Kong (CityU) overcame this obstacle by inventing a novel device-engineering strategy to successfully suppress the energy conversion loss, resulting in record-breaking efficiency.

A multinational team of researchers, co-led by a City University of Hong Kong (CityU) physicist, has found that a novel metallic crystal displays unusual electronic behaviour on its surface, thanks to the crystal’s unique atomic structure. Their findings open up the possibility of using this material to develop faster and smaller microelectronic devices.

The metal-carbon dioxide battery is a promising and environmentally friendly technology, but its energy efficiency is limited. Recently, a research team co-led by chemists from City University of Hong Kong (CityU) discovered an innovative way to overcome this problem by introducing an unconventional phase nanomaterial as a catalyst, boosting battery energy efficiency up to 83.8%. The study reveals a novel design of catalysts for the new generation of meta-gas batteries that can contribute to carbon neutral goals.

The distinguished research capabilities of young scholars at City University of Hong Kong (CityU) are widely recognized. The National Natural Science Foundation of China recently announced the results of the Excellent Young Scientists Fund (Hong Kong and Macau) for 2022. Four young scholars at CityU were awarded. Each of them will receive a research grant of RMB 2 million to directly conduct innovative research in Hong Kong for a period of three years.

The double-helix structure of DNA deforms by environmental stimuli, which will then affect gene expression, and eventually trigger a sequence of cellular processes. Recent researches led by a physicist from City University of Hong Kong (CityU) observed substantial DNA deformations by ions and temperature changes. Furthermore, the researchers developed one simple physical model to explain DNA deformations. These results provide new insights into the molecular mechanisms of cellular responses to ions and temperature changes and can be used to control gene expression by ions and temperature.

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.
打百家乐庄闲的技巧| 百家乐官网桌子北京| 波音百家乐现金网投注平台排名导航| 大发888官网下载 官方| 大发888娱乐城官| 百家乐官网投注科学公式| 金沙百家乐的玩法技巧和规则| 宝马会百家乐官网现金网| 至尊百家乐20130402| 百家乐官网真人大头贴| 模拟百家乐官网的玩法技巧和规则| 威尼斯人娱乐城是波音| 百家乐官网赌场现金网| 大发88846| 网上百家乐骗人不| 皇冠网小说推荐| 百家乐园36bol在线| 申博百家乐官网有假吗| 亚洲顶级赌场 塑造品牌神话| 百家乐官网是个什么样的游戏| 百家乐博彩吧| 百家乐官网网页游戏| 百家乐官网赢钱战略| 励骏会百家乐的玩法技巧和规则 | 网页百家乐官网官网| 斗牛棋牌游戏| 真人百家乐博弈| 哪个百家乐官网网站最大| 德州扑克单机| 百家乐官网智能系统| 大发888官网 df888ylcxz46| 百家乐赢钱心得| 沙龙百家乐官网娱乐场开户注册 | 百家乐官网桌布无纺布| 大发888官网下载| 做生意的十大风水禁忌| 百家乐游戏教程| 百家乐官网博娱乐赌百家乐官网的玩法技巧和规则 | 枣强县| 德州扑克单机版下载| 百家乐旺门打法|