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

CityUHK Scientists Develop Switchable WS? Nanosheets for Smarter Electronics and Sensors

 

Researchers from City University of Hong Kong (CityUHK) have achieved a breakthrough in nanomaterials by developing a precise, scalable method to produce phase-switchable WS? nanosheets, paving the way for next-generation electronics, sensors, and wearable technologies.

Led by Professor Zeng Zhiyuan from the Department of Materials Science and Engineering and the State Key Laboratory of Marine Pollution, the team discovered that by tuning the electric current during a process called electrochemical lithium intercalation, they could precisely control the phase of WS? nanosheets.

Using low current, they produced 2H-phase bilayers with semiconducting properties, while a high current induced a transition to the 1T′-phase, yielding monolayers with metallic characteristics. This level of control over phase-switching — a challenge that has long limited 2D material engineering — enables tailor-made materials for specific technological needs.

The findings, detailed in a recent Nature Synthesis paper titled “Phase-switchable Preparation of Solution-processable WS? Mono- or Bilayers”, represent a breakthrough in both precision and scalability.

"This work demonstrates a precise method to control the crystal phase of 2D WS? nanosheets during exfoliation, unlocking the potential for scalable production of solution-processable TMDs with tailored properties," Professor Zeng explained. "These findings pave the way for phase-engineered materials in applications like sensors and electronic devices, bridging a gap in phase-switching technology."

Achieving this innovation required careful control of current density and cutoff voltage, allowing the team to strike a delicate balance between surface film formation and lithium diffusion — crucial for selectively producing either 2H-phase bilayers or 1T′-phase monolayers.

This new method is already showing promise. The researchers demonstrated that phase-controlled WS? nanosheets could power high-speed humidity sensors with performance that depends on the chosen phase. Looking ahead, they plan to apply similar phase-switching techniques to other 2D materials, with potential applications in wearable electronics, optoelectronics, and touchless interfaces.

g
Preparation and characterization of 2H- and 1T′-WS2 nanosheets.
m
Humidity sensor application of exfoliated WS2 nanosheets.

 

m
Professor Zeng Zhiyuan (front row, right) and his research group from the Department of Materials Science and Engineering at City University of Hong Kong.

Professor Zeng Zhiyuan, Professor Yu Xinge from CityUHK, Professor Li Ju from Massachusetts Institute of Technology and Professor Gu Meng from Eastern Institute of Technology are the corresponding authors of the study. The first authors are Dr. Mei Liang, Dr. Gao Zhan, Mr. Yang Ruijie and Dr. Zhang Zhen, all from CityUHK.

For inquiries, please contact Professor Zeng Zhiyuan, the Department of Materials Science and Engineering at CityUHK, by email at zhiyzeng@cityu.edu.hk

Contact Information

Back to top
真人网上娱乐城| 石棉县| 博天堂百家乐官网| 澳门娱乐城开户| 百家乐路单网下载| 永利百家乐官网娱乐| 澳门百家乐官网官方网站破解百家乐官网技巧 | 天长市| 百家乐破解秘籍| 有百家乐官网的游戏平台| 金海岸百家乐的玩法技巧和规则| 百家乐官网鞋| 百家乐真钱| 百家乐水浒传| 百家乐官网路子分| 比分直播| 百家乐网上真钱娱乐场| 钱隆百家乐官网软件| bet365论坛| 巴厘岛百家乐的玩法技巧和规则| 太原百家乐官网的玩法技巧和规则 | 百家乐那里玩| 娱乐城百家乐官网技巧| 百家乐博乐城| 捷豹百家乐官网的玩法技巧和规则| 网络博彩网| 大发888下载ylc8| 玩百家乐技巧博客| 至尊百家乐官网20130402| 紫阳县| 欢乐谷娱乐城开户| 大发888下载大发888娱乐城| 网络百家乐公式打法| 澳门百家乐官网赢钱公式不倒翁| 澳门金盛国际娱乐| 大发888游戏备用网址| 皇冠百家乐在线游戏| 太阳城百家乐群| 中华百家乐官网的玩法技巧和规则| 百家乐官网送彩金网络| 澳门百家乐官网登陆网址|