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news20220602

【潮玩科技】電子衣物(只有英文版本)

(只有英文版本)Professor Zijian Zheng was interviewed by Now TV earlier, he introduced a new type of liquid-metal fibre mat developed by his team. The material is highly permeable and super elastic, which can be used for wearable electronic devices. Prof. Zheng expressed his hope in this research is to assist in athletes’ training and the medical field in the future.

2022年6月10日

0520

RI-IWEAR 成員在 TechConnect全球創新獎 2022 上榮獲兩項大獎(只有英文版本)

(只有英文版本)Prof. Hong HU, Dr Dahua SHOU and Prof. Jintu FAN, members of Research Institute for Intelligent Wearable Systems (RI-IWEAR), won two prestigious global innovation awards in the areas of materials science and biotechnology at the TechConnect World Innovation Conference and Expo 2022 - the world’s largest multi-sector event for fostering the development and commercialisation of innovations.   The award-winning innovations include a new type of more environment-friendly moisture-absorbing and sweat-releasing fabric and an automatic temperature-controllable mask. Details are as follows: Moisture-Absorbing and Sweat-Releasing Multilayer Polylactic Acid Fabric and Manufacturing Technology (Prof. HU Hong, Institute of Textiles and Clothing) The new fabric stands out from existing moisture-absorbing fabric technology in that its fabrication technique is simpler, cheaper, and more environment-friendly. By employing double weft knitting technology, it only takes one single manufacturing process to produce the new fabric structure with improved moisture-absorbing and sweat-releasing properties. It also has inherent biological resistance and is ideal for use in school uniforms and sportswear. Omni-Cool-Breath: A Smart Air-Conditioned Mask (Dr SHOU Dahua, Professor FAN Jintu and Dr HUANG Guanghan, Institute of Textiles and Clothing) Omni-Cool-Breath is the first automatic temperature-controllable mask that brings revolutionary access to all-day cool breath and thermal comfort under various activities and thermal conditions. It reduces temperature by 12°C and humidity by 65% under low voltage via an innovative miniature thermoelectric cooling system. The ergonomically designed lightweight mask uses skin-friendly and biodegradable 3D printing materials that enable the user to enjoy nine hours of clean air.   For more information of the TechConnect 2022 Innovation Awardees, please visit the official website: https://www.techconnectworld.com/World2022/participate/innovation/awards.html

2022年5月31日

0526_cn

嚴鋒教授團隊研發便攜式新冠病毒抗體檢測儀 約6分鐘可測體內抗體水平

嚴鋒教授團隊研發出便攜式新冠病毒抗體檢測儀,透過配合手機應用程式,約6分鐘可測出體內的抗體水平。 新研發的新冠病毒抗體檢測儀運用有機電化學晶體管技術,測試接種疫苗後或感染病毒後的抗體水平。 團隊指,檢測儀的靈敏度較市面的快測抗體設備為高,使用者需以藍牙將檢測儀與手機應用程式連接,將唾液或血清樣本放在測試區,五分鐘後滴入電解質,再以手機應用程式啟動檢測,約20秒後,便會顯示樣本抗體水平,整個檢測過程需時約6分鐘,成本約為10元。

2022年5月27日

220505_1

李寧博士到訪理大參觀研究成果(只有英文版本)

(只有英文版本)Dr Ning LI, Chairman of Li-Ning Company Limited, visited PolyU on 5th May 2022 to seek further cooperation with PolyU. Li-Ning Company Limited is a famous Chinese sportswear and sports equipment company founded in 1989 by Ning LI, a former Chinese Olympic gymnast.   Professor Xiaoming TAO, Director of RI-IWEAR, Professor Jintu FAN, Professor Li LI, and Dr Tracy MOK, members of RI-IWEAR gave introductions on the research related to sportswear and health care for sportsmen, displayed the examples of the latest textile technology, and demonstrated the monitoring and rehabilitation technology for the sportsman, respectively.   Dr Ning LI detailed consulted on the relevant technical requirements and the possible development directions. The whole process of technology introduction and demonstration was broadcasted to the R & D team of Li-Ning Company Limited at the same time. This is communication for research and development knowledge transfer.

2022年5月5日

20220428

中國著名運動服飾公司創始人李寧董事長訪問理大(只有英文版本)

(只有英文版本)Dr Ning LI, Chairman of Li-Ning Company Limited, visited PolyU on 28th April 2022. Li-Ning Company Limited is a famous Chinese sportswear and sports equipment company founded in 1989 by Ning LI, a former Chinese Olympic gymnast. Professor Xiaoming TAO gave an introduction to the research and development knowledge transfer of the Research Institute for Intelligent Wearable Systems.

2022年4月28日

20220422-1

用於可穿戴電子產品的超細聚苯胺纖維的規模化生產(只有英文版本)

(只有英文版本)High performance conducting polymer fibres are highly demanded in fields from advanced fibrous devices to frontier fabric electronics. Recently, a joint research team, led by Prof. Xiaoming TAO and Dr Yang CHAI, reported a scalable good solvent exchange strategy to produce ultrafine polyaniline (PAni) fibres. This work was published at Nature Communications. The first authors are Dr. Fang Bo and Mr. Jianmin Yan.   Processing conducting polymers into macroscopically fibrous materials makes it possible to translate their nano-object features to human-friendly products in a continuous manner. Primarily due to the large diameters, the performance and expectations of most achieved continuous conducting polymer fibres (CPFs) have been limited by their insufficient electroactive surfaces and weak tensile strength. Tao’s group report a good solvent exchange strategy in a modified wet spinning technique to prepare the ultrafine PAni fibres (UFPFs) at the large scale. Beyond conventional wet spinning protocol, they replaced poor solvents by good solvents as the coagulation bath to decrease the viscosity of gel protofibres, which were subject to an ultrahigh drawing ratio and reduced to an ultrafine morphology. In the modified one-step wet spinning process, they used good solvents as the coagulation bath to realize the mass production of UFPFs. A decreasing of diameter from ~0.1 mm to ~4.7 µm was observed, which is a record small value in the achieved wet-spun CPFs. The ultrafine fibre shows a smooth surface, highly crystallized microstructures, and uniform electrical properties. Moreover, such an impressive drawing ratio enables a very high production efficiency of UFPFs beyond 40 meters per minute.   UFPFs show impressive mechanical performance and energy storage abilities. UFPFs have a modulus of 29.89±5.6 GPa, and a strength of 1080±71 MPa, at least one order of magnitude higher than that of CPFs with larger diameters. They used polyvinyl alcohol (PVA)-H3PO4 gel electrolyte and two UFPF electrodes to construct a micro capacitor to evaluate the electrochemical activity of UFPFs. The area capacitance is between 1008 and 1666 mF cm-2 at the current densities between 0.32 and 3.18 mA cm-2, outperforming previously reported thick CPFs and other electrodes, and approaching to that of PAni nanowires. Benefitting from the favorable energy and charge storage performance of UFPFs, they demonstrated a high-performance all-solid organic electrochemical transistor (OECT), which is very soft, and shows favorable amplification performance with a high on-off current ratio (>103) at low voltages (

2022年4月22日

Research

news20220421

壽大華博士獲理大委任為利民先進紡織科技青年學者(只有英文版本)

(只有英文版本)Congratulation to Dr Dahua Shou, member of the Research Institute for Intelligent Wearable Systems was appointed as Limin Endowed Young Scholar in Advanced Textiles Technologies. An awardee of many prestigious awards, including TechConnect Global Innovation Awards for two consecutive years and those conferred by the International Exhibition of Inventions of Geneva, Dr Shou has published over 60 SCI papers in impactful journals such as Science Advances, PNAS, Advanced Energy Materials, and Advanced Functional Materials. Currently he serves on the editorial boards of four SCI journals and is a lead guest editor for several SCI journals.   The Limin Endowed Young Scholar in Advanced Textiles Technologies is donated by Dr Harry LEE, Chairman of TAL Apparel Limited and member of the Industrial Advisory Committee for RI-IWEAR.   Click the link for more information of the Endowed Young Scholars Scheme.

2022年4月21日

0401_CN

高效可集成的離子凝膠濕氣發電機

      在全球資源短缺和碳中和的高度需求下,尋找簡單高效的綠色能源轉換技術,實現能源和社會的可持續發展具有重大意義。濕氣發電機利用大氣環境濕氣中的能量直接產生電能,沒有污染物的產生和有害氣體的排放,是能源領域的一個新興的研究熱點。然而目前大多數的濕氣發電機輸出間歇性的電信號和低電流阻礙了實際應用。另外,實現大規模集成和應用依舊是目前研究的瓶頸。     為了解決這些問題,陶肖明教授研究團隊開發了一種凝膠型的濕氣發電機 (ionic hydrogel moisture-electric generator, IHMEG),能夠高效收集空氣中的水汽直接轉換成電能,實現了高效的電流密度和能量產出。這種新型的離子凝膠濕氣發電機不僅可以穩定輸出直流電壓0.8 V超過1000小時,還能產出高電流密度(0.24 mA·cm-2) 和突出的輸出功率密度(W·cm-2)。更重要的是該IHMEG設備能大規模的集成獲得210V的電能輸出,並成功的為許多微電子設備供電,包括電子墨水屏,金屬電沉積裝置,甚至發光二極體陣列。這種凝膠型的濕氣發電機製備工藝簡單,價格便宜,可實現柔性集成,在物聯網(Internet of things, IoT)和自供電的可穿戴電子系統等領域具有巨大的應用前景。相關工作以“Ionic Hydrogel for Efficient and Scalable Moisture-Electric Generation”為題發表在最新一期的《Advanced Materials》(https://doi.org/10.1002/adma.202200693)。文章第一作者是博士畢業生楊素。

2022年4月1日

Research

0330

卓越研究:拉脹紡織品

拉脹紡織品是一種擁有非傳統特性的纖維性材料,它彎曲時會呈現雙曲線形狀,以及具備高抗凹壓、高能量及震動吸收的能力。這種材料獲廣泛應用於紡織服裝中,例如功能性服裝、防撞設備、醫療護理儀器以及智能可穿戴裝置等。 具有負泊松比的拉脹紡織品在拉伸時會向各個方向膨脹,擠壓時則會收縮。拉脹紡織品材料具有高度的舒適性和靈活性,可應用於在服裝設計。 智能可穿戴研究院成員,紡織及服裝學系胡紅教授透過採用包括紡紗、針織、機織和編織在內的不同類型的紡織技術來改變纖維集合體的結構,研發出一系列拉脹物材料,包括拉脹紗線、拉脹布料和拉脹紡織複合材料。 由於這些新開發的拉帳物料都是源自實驗室,在產初期,團隊遇到不少挑戰,包括缺乏能生產商用、具有復雜的纖維結構的拉帳紡織物的設備。然而,這些挑最終啓發了胡教授自行研發新的生產設備。 此外,由於巿場上並無類似的生產工藝可供參考,因此生產拉帳物料的過程必需經過專門設計。初期因產能有限,導致可用拉脹紡織品供應短缺,限制了商業終端產品的大規模生產。 目前,隨著研究團隊累積了更多實際的生產經驗,他們已推出了更多適合商用的優質拉脹紡織品,同時胡教授的研究亦已經應用於醫療、運動、功能性及防護性服裝,以及可穿載的科技產品等範圍。

2022年3月30日

0328

壽大華博士榮獲2022年日內瓦發明獎銀獎(只有英文版本)

(只有英文版本)Dr Dahua SHOU, member of Research Institute for Intelligent Wearable Systems, developed a novel fabric that won silver medal in online special edition of the International Exhibition of Inventions of Geneva (Geneva Inventions Expo) - Special Edition 2022 Inventions Geneva Evaluation Days – Virtual Event. The awarded project is Omni-Cool-Dry™: a Desert Beetle Inspired Skin-like Fabric for Dynamic Thermal and Moisture Management. Compared to normal fabrics, this fabric weighs 75% less, dissipates sweat 3 times faster, and is 50% less clingy during heavy perspiration. The wearer’s skin temperature is also 5°C lower. The skin-like fabric aims to keep wearers cool, dry and comfortable by dissipating sweat as water droplets, and by reflecting solar radiation and emitting body heat to the cold universe. The Inventions Geneva Evaluation Days – Virtual Event this year attracted about 800 inventions from 25 countries/regions. For details, please visit the event organiser’s official website: www.inventions-geneva.ch

2022年3月29日

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