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

CityU researchers invented a novel device enabling high-resolution observation of liquid phase dynamic processes at nanoscale

 

In situ observation and recording of important liquid-phase electrochemical reactions in energy devices is crucial for the advancement of energy science. A research team led by a scholar from City University of Hong Kong (CityU) recently developed a novel, tiny device to hold liquid specimens for transmission electron microscopy (TEM) observation, opening the door to directly visualizing and recording complex electrochemical reactions at nanoscale in real-time at high resolution. The research team believes that this innovative method will shed light on strategies for fabricating a powerful research tool for uncovering the mysteries of electrochemical processes in the future.

The use of conventional TEM is limited to thin, stable and solid samples because of the vacuum environment (a vacuum environment prevents the electrons from being absorbed or deflected along their pathways and affecting observation) in the chamber for holding the specimens. Liquid specimens are vacuum-incompatible, so they cannot be directly probed in traditional TEM. Fortunately, with the emergence of the more advanced in-situ “liquid cell TEM”, it is possible to study liquid phase dynamic processes in situ, such as observing crystal nucleation and growth in solution, electrochemical reactions in energy devices, and the life activities of living cells. The “liquid cell” is a core component of TEM to hold the specimens for the electron beam to pass through, thus enabling in-situ observation. But it is challenging to manufacture a high-quality liquid cell for TEM because it involves incorporating electrodes and encapsulating electrolytes in a tiny “closed” liquid cell to prevent leakage and connect it to an external power source at the same time.

Schematic illustration of the electrochemical liquid cell.
Schematic illustration of the electrochemical liquid cell.
Credit: ? Yang, R. et al. https://www.nature.com/articles/s41596-022-00762-y

A research team co-led by Dr Zeng Zhiyuan, Assistant Professor in the Department of Materials Science and Engineering at CityU, and Professor Li Ju from the Massachusetts Institute of Technology (MIT) successfully developed an efficient and novel method to fabricate “closed” electrochemical liquid cells, which can greatly improve the resolution of TEM with liquid samples.  

“The newly developed closed liquid cell performs two main jobs: (1) enclosing the liquid samples in a closed container, thereby separating them from the microscope vacuum environment; and (2) confining the liquid samples to a thin enough liquid layer using two electron-transparent silicon nitride (SiNx) windows, so that electrons can travel through the liquid layer and image the reactions,” explained Dr Zeng.

To manufacture the high-performance, “closed” electrochemical liquid cells in this protocol, the research team used advanced nanofabrication techniques, including photolithography, to fabricate the core component of in situ liquid TEM – the liquid cell. Photolithography is a process that uses ultraviolet light to transfer a geometric design from an optical mask to a light-sensitive chemical (photoresist) coated on the substrate.

The team fabricated the bottom chip and top chip separately, and then assembled them together. Gold or titanium electrodes were deposited on the bottom chip during the metal deposition process. Then the electrolyte was loaded and sealed inside the liquid cell.

Using this innovative liquid cell with the transmission electron microscope, the dynamic electrochemical reactions of the liquid sample on the electrode surface can be recorded in real time at high resolution through the TEM operating system incorporated with a high spatio-temporal resolution camera.

“The electrochemical liquid cell designed by our customized nanofabrication method has thinner SiNx imaging windows (35nm) than commercial ones (50nm),” explained Dr Zeng. “It also has a thinner liquid layer (150nm) than that of commercial ones (1,000 nm). The thinner SiNx imaging windows and thinner liquid layer ensure that our fabricated liquid cell can capture electrochemical reactions with better TEM spatial resolution than commercial ones can.”

Fabrication process of the electrochemical liquid cell. Credit: ? Yang, R. et al. https://www.nature.com/articles/s41596-022-00762-y

The team believes that a lot of opportunities and applications for the in-situ TEM observation of electrochemical reactions will emerge soon after the development of the electrochemical liquid cell with the selection of patterned metal electrodes and the encapsulated liquid electrolytes in the liquid cell.

This newly proposed fabrication protocol can also be utilized in other in-situ techniques beyond TEM. For example, a proper adjustment to this protocol would be suitable for the fabrication of electrochemical liquid cells for in-situ X-ray characterizations of electrochemical reactions (X-ray absorption spectroscopy, X-ray diffraction, etc.).

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

 

The findings were published in the scientific journal Nature Protocols, titled “Fabrication of Liquid Cell for In-Situ Transmission Electron Microscopy of Electrochemical Processes”.

Dr Zeng, from CityU, and Professor Li, from MIT, are the corresponding authors of the paper. The first author is Mr Yang Ruijie, from Dr Zeng’s research group. Other collaborators are from Xiamen University and Xi’an Jiaotong University.

The work was supported by the Hong Kong Research Grants Council and the Shenzhen Science and Technology Innovation Committee.

In situ TEM observation of electrochemical processes and post-in situ characterizations. Credit: ? Yang, R. et al. https://www.nature.com/articles/s41596-022-00762-y

 

Contact Information

Back to top
百家乐官网电投软件| 百家乐官网五式缆投法| 百家乐机器出千| 皇冠球网| 百家乐注码技巧| 网络百家乐开户网| 贡嘎县| 微信百家乐群资源| 百家乐官网翻天粤语版qvod| 澳门百家乐官网规律星期娱乐城博彩| 百佬汇百家乐的玩法技巧和规则| 百家乐官网免费赌博软件| 大发888娱乐场下载lm0| 百家乐赌场筹码| 百家乐长庄投注| 马山县| 金域百家乐的玩法技巧和规则| 百家乐官网玩法及细则| 新西兰百家乐的玩法技巧和规则| 百家乐官网网上娱乐场开户注册 | 永利高现金网可信吗| 真人百家乐官网怎么玩| 大发888娱乐真钱游戏下载| 大发888在线娱乐百家乐| 属蛇和属猪做生意| 大发888在线娱乐城二十一点| 太阳城百家乐口诀| 网络百家乐官网路子玩| 六合彩图片| 新时代百家乐的玩法技巧和规则| 竹山县| 大发888送钱58元| 百家乐手机投注平台| 百家乐官网永利娱乐场| 澳博娱乐| 威尼斯人娱乐平台开户| 百家乐赌博机有鬼吗| tt娱乐城注册| 菲律宾百家乐娱乐场| 百家乐的赚钱原理| 百家乐官网单机游戏免费下|