中大成功研發超級電容器及電池

中大工程學院院長汪正平及團隊,最近成功研發全球文獻記錄中最高效能的超級電容器及最高容量的液流電池。汪指可再生能源時有時無,如黑夜或沒風日子便無法轉化電能。而這款電容器結合蓄電池及電容器優點,加強儲電量及電力傳輸速度,解決可再生能源供電不穩的問題。
Date: 
Thursday, September 15, 2016
Media: 
Sky Post

中大最強電容器「狂收落雨柴」

隨着經濟不斷發展,全球對能源的需求亦隨之增加,開發太陽能或風能等可再生能源,對未來社會發展至關重要。不過,這類能源時有時無,需要用電容器先把電儲起,以確保電能不會在晚間或無風時中斷。中文大學研究團隊近日成功研發出全球文獻記錄中最高效能的超級電容器及最高容量的液流電池,提升了儲電量及電力傳輸速度,如此就能「好天收埋落雨柴」,達至穩定供電,有助促進可再生能源發電的普及化。
Date: 
Thursday, September 15, 2016
Media: 
Wen Wei Po

中大研超級電容器 效能最高創文獻紀錄

全球氣候變化加劇,開發可再生能源對未來社會發展相當重要。不過可再生能源供電不穩定,限制了其發電的普及性。中文大學工程學院院長汪正平領導的研究團隊,進行為期五年的研究計畫,團隊最近成功研發出全球文獻紀錄中最高效能的超級電容器及最高容量的液流電池,大大提升儲存及傳輸可再生能源的效能,有助促進可再生能源發電的普及化。相關研究成果分別於三本學術期刊刊登。
Date: 
Thursday, September 15, 2016
Media: 
Sing Tao Daily

A Breakthrough in Storage and Transmission of Renewable Energy

Date: 
2016-09-14
Thumbnail: 
Body: 

Prof. Wong Ching-ping has been leading a cross-institutional research team to conduct a five-year research project entitled ‘Smart Solar Energy Harvesting, Storage and Utilization’. The research team of CUHK has successfully invented the most efficient supercapacitors and the flow batteries with the highest volumetric capacity reported to date. The inventions can strongly enhance the efficiency of renewable energy storage and transmission and increase the penetration of renewable electricity generation. The research findings on the supercapacitors have been published in Nano Energy. The research findings on the new flow batteries have been published in Nature Communications and Advanced Energy Materials

With the fast-growing demand for energy consumption, the greenhouse gas emissions caused by fossil fuels accelerate climate change. The development of renewable energy becomes critical to the future development of society. According to the report of International Renewable Energy Agency (IRENA) published in June 2016, it is forecasted that the electricity generation from solar energy will increase from less than 2% today to 13% of the world by 2030. It is equivalent to an average annual capacity addition of more than double in the next 14 years. The report also illustrates that the electricity generation from solar energy in 2014 has grown by nearly 40% as compared to 2013. The electricity generation cost is forecasted to decrease by nearly 60% in the next ten years. These figures reflect the growing emphasis on and the promising potential for solar energy technology in future. 

Many governments are devoted to promoting the use of renewable energy, but its unstable supply and its inability to provide sufficient energy when electricity demand peaks, limit its penetration. The asymmetric supercapacitors and the new flow batteries invented by the CUHK research team are able to push beyond the limit of the current technology.

Supercapacitors with record performance in efficiency

Traditional batteries have high energy density, but low power density. They can store large amounts of energy, but the charging time is longer. Capacitors have high power density, but low energy density. The charging time is faster, but they can only store a small amount of energy. Traditional batteries and capacitors, therefore, cannot reach the best level of performance due to their drawbacks. 

Prof. Wong has been working with Prof. Zhao Ni, Assistant Professor of the Department of Electronic Engineering, CUHK, as well as their team of students and post-doctoral fellows, to develop nanostructured metal oxide-carbon composites for asymmetric supercapacitors. The energy density and power density of asymmetric supercapacitors can reach as high as 98.0 W h kg-1 and 22,826 W kg-1 respectively, making them the best performing supercapacitors. 

Prof. Wong Ching-ping said, “The supplies of renewable energy, such as solar energy and wind energy, are not stable. They cannot generate electricity at night or on windless days. Therefore, a more effective capacitor is needed to store more renewable energy on sunny or windy days, thereby supplying electricity stably. Asymmetric supercapacitors combine the advantages of batteries and capacitors and successfully improve the amount of energy stored and transmitted. This can address the unstable supplies of renewable energy.” 

Catholyte flow batteries with the highest volumetric capacity reported to date

The research team led by Prof. Lu Yi-Chun, Assistant Professor of the Department of Mechanical and Automation Engineering, CUHK, has successfully developed catholyte flow batteries last year whose volumetric capacity reached  294 Ah L-1. The team has made a breakthrough again this year. They have further increased the volumetric capacity to 550 Ah L-1 by combining liquid phase, lithium iodide and solid phase sulphur flow cathodes. It is the highest catholyte volumetric capacity to date. Prof. Lu successfully obtained a patent on the technology and planned to apply it to electric cars.

Prof. Wong said, “With the popularity of electric cars, this technology’s future development is promising. In fact, the research findings are widely recognised and supported by the industry. Some companies have approached us for further collaboration. Meanwhile, it also signifies a step forward in the penetration of renewable energy and improvement of air quality.” 

The research team is now conducting a field demonstration at a student hostel at Lee Woo Sing College, CUHK. The team has installed rooftop solar panels, a smart power storage system and microgrids. Led by Prof. Chiu Dah-ming, Winston, Research Professor of the Department of Information Engineering, CUHK, the research team has been collecting data for analysis and assisting the College to deploy appropriate energy-saving initiatives. The data can also provide reference figures to smart cities.    

‘Smart Solar Energy Harvesting, Storage and Utilization’ Research Project

The five-year research project has been funded by the Theme-based Research Scheme (TRS) of the Research Grants Council (RGC) of Hong Kong Government (HK$ 60.33 million) since 2014, with another HK$ 13.8 million support from CUHK and HK$ 3 million from other partner universities. More than 30 scholars and experts from CUHK, The Hong Kong Polytechnic University, The Hong Kong University of Science and Technology and The University of Hong Kong has been working together to enhance the efficiency of solar power and the penetration of the technology. 

Project website: https://sse.erg.cuhk.edu.hk/sse/

 

(From left) Prof. Zhao Ni, Assistant Professor of the Department of Electronic Engineering, Prof. Wong Ching-ping, Dean of Engineering and Prof. Lu Yi-Chun, Assistant Professor of the Department of Mechanical and Automation Engineering.

 

Filter: Dept: 
Faculty
EE
MAE
Media Release

網絡安全 科企有責

香港是現代化及高科技城市, 但公眾對網絡安全意識甚低,大部分僅局限於定期更換密碼的層面。然而,日常網絡活動中潛伏着很多不為人知的風險。以容許用戶以同一組賬號及密碼使用不同平台的單點登錄(SSO)服務為例,由於使用程序快捷方便,部分主流身份提供商(IdPs)包括Facebook、Google、騰訊和新浪,以及第三方應用程式開發者均廣泛使用,大部分用者對服務可能埋藏着的保安漏洞卻渾然不知。
Date: 
Tuesday, September 13, 2016
Media: 
Hong Kong Economic Journal

IT giants should make cyber security a corporate social responsibility

or a city that likes to see itself as modern and high-tech, public awareness about cyber security in Hong Kong has largely stayed at a rather basic level where people are told they should regularly change their passwords. Yet cyber security is very fragile, as was dramatically exposed in a recent controversial London art exhibition that featured images captured from unsecured webcams in homes and businesses in Hong Kong.

Date: 
Monday, September 12, 2016
Media: 
China Daily Hong Kong Edition

Pages