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20221222

Prof. Xiaoming TAO Published an Invited Review Article in Natural Sustainability

Natural Sustainability, a top journal of the field, published an invited review article entitled “Advancing life-cycle sustainability of textiles through technological innovations”, which was released online on 22 December 2022 (https://doi.org/10.1038/s41893-022-01004-5). An international team led by Prof. Xiaoming Tao of Hong Kong Polytechnic University was the contributing authors.   Throughout their life cycle, textiles produce 5–10% of global greenhouse gas emissions and consume the second-largest amount of the world’s water with polluting microplastics and chemical agents released to waterways. Prof. Tao’s team and Dr. Svetlana Boriskina of Massachusetts Institute of Technology have joined forces and spent two years together to study technology innovations and their impacts on sustainability. The team examined the state-of-the-art technology developments meant to solve these problems in a cradle-to-grave fashion.  They collected 22724 publications during the last ten years, among which 940 were screened and 215 were studied in detail.  The team analysed their impacts with respect to the Sustainable Development Goals in United Nations Agenda 2030, particularly those concerning the deployment of natural resources, energy and environmental impacts. A systematic analytical framework was followed to identify and elucidate impactful technologies.   Based on the findings, the team further discussed future directions of research and developments along which the green transformation of textiles could be accelerated. The topics cover: green sciences and processes based on high-throughput, data-driven discovery studies to identify and develop sustainable replacements for synthetic polyester and nylon fibres, biomass-based and degradable fibre–forming materials and the cultivation of insect- and disease-resistant plant seeds that require less water can be achieved through advancements in biological science, waterless or less-water colouration, reduction or elimination of production steps as well as mono-materiality in textiles for proactive material recovery.   The first author is Dr. Lisha Zhang, Research Assistant Professor. Prof. Xiaoming Tao is the corresponding author.

22 Dec, 2022

20221212-1

RI-IWEAR members visited the Hong Kong Science & Technology Parks Corporation

RI-IWEAR actively builds external collaborative partnerships with local research institutions. A visit to the Hong Kong Science & Technology Parks Corporation (HKSTP) on 12 December 2022 was arranged. A total of 44 RI-IWEAR members, colleagues from Industrial Centre, and research students from PolyU participated in this activity.   Dr Carmen FUNG, Associate Director of Strategic Development of HKSTP gave a welcome speech. Ms Candy CHENG, Manager of Strategic Development, and Dr Horace LEUNG, Manager of Industry Development, introduced the Heterogeneous Lab and Microelectronics Centre (MEC) located at Yuen Long INNOPARK, respectively. MEC is established to support the development and pilot production of new generation micro-electronics products with flexible design dedicated cleanrooms and special chemical handling facilities. After the introduction of the facilities related to the microelectronics industry, PolyU members were given a guided tour of the Biomedical Technology Support Centre, The Sensor Packaging and Integration Laboratory (Sensor Lab) and the Medical Device Testing Lab at HKSTP.

20 Dec, 2022

20221206-1

RI-IWEAR Members Visited Hong Kong Productivity Council

A total of 28 RI-IWEAR members and colleagues from Industrial Centre of PolyU visited the Smart Wearables, Watch & Clock Technology Centre and Advanced Electronics Processing Technology Centre of the Hong Kong Productivity Council (HKPC) on 6 December 2022.   Smart Wearables, Watch and Clock Technology Centre established with the ITF funding of the Hong Kong SAR Government on Oct 2022, is the first and only platform in the Hong Kong Special Administrative Region to offer testing and verification of prototypes of smart wearables, watches and clocks. During the visit, the colleagues from the Smart Manufacturing Section of HKPC mainly introduced the smart wearable testing services, including the performance testing of devices for measuring steps, heart rates, blood pressure, and oxygen content in blood, and briefly show the over 50 different independent testing services for traditional quartz and mechanical watches in compliance with international & Swiss standards.   Furthermore, a new showroom with last manufacturing products and equipment of a new centre which provided services in the areas of electronics and advanced manufacturing was visited. After the visit to the facilities of the two centres, Mr Samson SUEN, General Manager, Smart Manufacturing of HKPC, introduced the organisation, facilities of the centres and the research projects under the Smart Manufacturing Section. Members actively discussed the potential PolyU–HKPC collaboration and future direction.

7 Dec, 2022

20221118

Three RI-IWEAR Members Recognised Amongst the World’s Most Highly Cited Researchers in 2022

Three RI-IWEAR members, Dr Bolong HUANG, Prof. Gang LI, and Prof. Feng Yan have been recognised in the list of “Highly Cited Researchers 2022” by Clarivate Analytics for their significant research impact, reflected in their publication of multiple papers that have been frequently cited by fellow academics.   A total of 6,938 researchers from 69 countries and regions with a diverse range of research fields are named as Highly Cited Researchers in 2022. The list identifies the most influential scholars around the world, determined by the production of multiple highly cited papers that rank in the top 1% by citations for field and year in the Web of Science citation index over the last decade. Congratulations to our colleagues on their high ranking and impact! RI-IWEAR's Scholars Ranked in the Top 1% by Citations  Name (by alphabetical order of surname)  Category  Dr Bolong HUANG  Cross-Field  Prof. Gang LI  Cross-Field  Prof. Feng YAN  Cross-Field

18 Nov, 2022

20221113

Two RI-IWEAR Scholars were Funding Supported by NSFC/RGC Collaborative Research Scheme 2022/23

The National Natural Science Foundation of China (NSFC) and the Research Grants Council (RGC) of Hong Kong Collaborative Research Scheme (CRS) aims to support larger-scale collaborative research across disciplines and / or across universities in the Mainland and Hong Kong, with a view to enhancing research output and impact on both sides. The Scheme aims to support research projects with duration of four years.    Two full proposals submitted by RI-IWEAR members, Prof. Yang CHAI and Prof. Zijian ZHENG, have been agreed to provide funding support with a total awarded amount of HK$ 7.164 million(i.e., 20.80% of total awarded funding) under these scheme. The focus areas of these two projects are Information Technology and New Materials Science.   Awarded Project in Collaborative Research Scheme 2022/23 Project Title Focus Area Hong Kong Project Coordinator Funding Period (months) Amount Awarded by RGC (HK$) Monolithically Integrated Electronics with Two-Dimensional Semiconductors from Controllable Growth to Device Integration Information Technology Prof. Yang CHAI 48 3,571,200 Long-cycle and High-energy-density Flexible Li Batteries Using Hollow Multishelled Structure and Hierarchical Composite Electrode New Materials Science Prof. Zijian ZHENG 48 3,592,800   Congratulations to our members!

13 Nov, 2022

cover

RI-IWEAR Member's Publication was Selected as The Inside Front Cover Article in Advanced Functional Materials

Developing conductive underwater glue for fast sealing and in situ monitoring is critical for ocean exploration yet remains a challenge. The fluidity of glue is a double-edged sword that is favorable for molecule spreading and formation of interlocking bonding network yet also leads to leakage of conductive ions. Dr Jimin FU, member of RI-IWEAR, and collaborators (Si Yu Zheng, Jintao Yang, and etc.) design a polymeric glue based on triazole-beared macromolecules and ionic liquids, which is possessing good conductivity and exhibiting rapid, strong, and long-lasting underwater adhesion on diverse substrates at various harsh environments and extreme temperatures. Furthermore, the glue possesses additional functions of underwater sensing and fluorescent labeling, which exhibits great potentials in underwater repair and follow-up crack monitoring. In molecular design, the nitrogen heterocyclic motif that prevails in biomolecular recognition is encoded with water-resistant benzene block in one pendant group to serve as underwater binding sites; ionic liquids (ILs) of [EMIM][BF4] is employed as the solvent for fast water exchange that triggers rapid adhesion. Simultaneously, the polymer-IL interaction is regulated, with the assistance of the theoretical calculations, to retain sufficient ILs within the adhesive for sensing. Finally, the glue is applied for underwater sealing and in situ monitoring various physical signals, while the fluorescent property is utilized for underwater labeling. This study should provide a new design strategy for the next-generation of multifunctional underwater adhesives and promote their applications. This research was published in Advanced Functional Materials and selected as the inside front cover article.

29 Oct, 2022

2percent2022

RI-IWEAR Scholars Ranked Amongst the World’s Top 2% Scientists (2022)

Seventeen RI-IWEAR members were recognised as the top 2% of scientists in the world in the year 2021. The report was released by a team of experts led by Prof. John Ioannidis of Stanford University and the latest version was published on 10 October 2022. Scientists are classified into 22 scientific fields and 176 sub-fields. This ranking identifies the top scholars in their speciality whose publications are most frequently cited by other authors for career-long and updated to end-of-2021. The publicly available database of over 100,000 top scientists provides standardised information on citations, h-index, co-authorship adjusted hm-index, citations to papers in different authorship positions, and a composite indicator. The report can be downloaded from Elsevier. Congratulations to our colleagues on their high ranking and impact in 2021! This recognition demonstrates RI-IWEAR’s influence in multiple disciplines and signifies our dedication to conducting world-class research in wearable technology. RI-IWEAR's Top 2% Scientists in the Global List  Name (by alphabetical order of surname)  Subject Field  Prof. Jiannong CAO  Networking & Telecommunications  Prof. Yang CHAI  Nanoscience & Nanotechnology  Prof. Wei CHEN  Nanoscience & Nanotechnology  Prof. Li CHENG  Acoustics  Prof. Jintu FAN  Polymers  Prof. Hong HU  Materials  Dr Bolong HUANG  Nanoscience & Nanotechnology  Prof. Gang LI  Nanoscience & Nanotechnology  Prof. Heng LI  Building & Construction  Dr Dahua SHOU  Materials  Prof. Defeng SUN  Operations Research  Prof. Xiaoming TAO  Materials  Prof. Wai-Yeung Raymond WONG  Inorganic & Nuclear Chemistry  Prof. John H. XIN  Polymers  Prof. Bingang XU  Materials  Prof. Feng YAN  Nanoscience & Nanotechnology  Prof. Yongping ZHENG  Biomedical Engineering

21 Oct, 2022

20221010

Dr Qiyao HUANG Obtained the NSFC’s Young Scientists Fund 2022

Congratulations to Dr Qiyao HUANG, a member of RI-IWEAR, who are among the 39 awardees at The Hong Kong Polytechnic University to have received the National Natural Science Foundation of China’s (NSFC) Young Scientists Fund 2022 for her project “Customized Fiber Placement Woven Flexible Energy Storage Fabric and its Structure and Properties”. The NSFC Young Scientists Fund supports young scholars to conduct scientific research on topics of their choice, strengthening their ability to research independently and creatively. This is the first time the Fund is open to researchers in Hong Kong. Each awardee will be granted RMB 300,000 to work on the proposed project for a period of three years. The list of awarded PolyU scholars and research projects . The 39 awarded PolyU scholars and research projects ( Chinese only )

10 Oct, 2022

20220922

Visit of Esquel Center of Innovation & Technology Team

A group of 5 members from the Esquel Center of Innovation & Technology team visited RI-IWEAR for seeking the opportunity for collaboration in wearable technology development on 22nd Sept 2022. They are Group Director, Mr. Herman CHAN, Director, Mr. Lam CHUNG, Senior Manager, Mr. Murphy NG, and Manager Ms, Natasha CHENG, and Mr, Ben LEUNG. Esquel Group is a knowledge-based innovation company that would push for positive change in the textile and apparel business and expanding into new territory.   By this opportunity, Prof. Xiaoming TAO, Prof. Feng YAN, Prof. Kinor Jiang, Prof. Lilly Li, and their research teams introduced the mature technologies in the intelligent wearable field. They are related to the energy supplied to wearable systems, manufacturing technology of wearable electronics, and wearable systems for healthy, sports, visual design, and other functional applications.

23 Sep, 2022

20220912

Gigantic Effect Due to Phase Transition on Thermoelectric Properties of Ionic Sol-gel Materials

Sol-gel phase transition in ionic thermoelectrical (i-TE) materials induced large rapid change in viscosity and ionic transport process thus it was expected to give a drastic variation in thermoelectric properties, crucial in low-grade waste heat harvesting for Internet of thing (IoT) and wearable electronic applications. Prof. Xiaoming TAO’s research team prepared and examined four types of ionic thermoelectric materials featured with non-phase-transition, thermal sol-to-gel phase-transition, thermal gel-to-sol phase-transition and UV-induced sol-to-gel phase-transition, which was recently published in Advanced Functional Materials. For the first time, a large rise of the thermopower was observed by 6.5 times during the sol-gel transition of poloxamer/LiCl system, an even greater ionic figure of merit by around 23 times. The phenomenon was found to be universal as the large variation in thermopower was confirmed in the other thermal gel-sol transitional and UV induced transitional materials. In addition, the mechanism and proposed a model was further revealed that dealt with the pre-, post- and during- phase-transition processes. Finally, six factors were probed influencing the huge variation of the thermopower during the phase-transition and shed light on the possible gigantic changes of thermopower during the phase transition. A possible route to design and control the desired TE performances of materials was uncovered, which can lead to a new sight in tunable i-TE devices for low-heat energy harvesting applications.

12 Sep, 2022

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