Washable, wearable 鈥榖atteries鈥: based on cheap, safe and environmentally-friendly inks and woven directly into fabrics, have been developed by researchers at the 探花直播 of Cambridge.

Turning textiles into functional energy storage elements can open up an entirely new set of applications

Felice Torrisi

Wearable electronic components incorporated directly into fabrics have been developed by researchers at the 探花直播 of Cambridge. 探花直播devices could be used for flexible circuits, healthcare monitoring, energy conversion, and other applications.

探花直播Cambridge researchers, working in collaboration with colleagues at Jiangnan 探花直播 in China, have shown how graphene 鈥 a two-dimensional form of carbon 鈥 and other related materials can be directly incorporated into fabrics to produce charge storage elements such as capacitors, paving the way to textile-based power supplies which are washable, flexible and comfortable to wear.

探花直播, published in the journal Nanoscale, demonstrates that graphene inks can be used in textiles able to store electrical charge and release it when required. 探花直播new textile electronic devices are based on low-cost, sustainable and scalable dyeing of polyester fabric. 探花直播inks are produced by standard solution processing techniques.

Building on previous work by the same team, the researchers designed inks which can be directly coated onto a polyester fabric in a simple dyeing process. 探花直播versatility of the process allows various types of electronic components to be incorporated into the fabric. 听

Most other wearable electronics rely on rigid electronic components mounted on plastic or textiles. These offer limited compatibility with the skin in many circumstances, are damaged when washed and are uncomfortable to wear because they are not breathable.

鈥淥ther techniques to incorporate electronic components directly into textiles are expensive to produce and usually require toxic solvents, which makes them unsuitable to be worn,鈥 said Dr Felice Torrisi from the Cambridge Graphene Centre, and the paper鈥檚 corresponding author. 鈥淥ur inks are cheap, safe and environmentally-friendly, and can be combined to create electronic circuits by simply overlaying different fabrics made of two-dimensional materials on the fabric.鈥

探花直播researchers suspended individual graphene sheets in a low boiling point solvent, which is easily removed after deposition on the fabric, resulting in a thin and uniform conducting network made up of multiple graphene sheets. 探花直播subsequent overlay of several graphene and hexagonal boron nitride (h-BN) fabrics creates an active region, which enables charge storage. This sort of 鈥榖attery鈥 on fabric is bendable and can withstand washing cycles in a normal washing machine.

鈥淭extile dyeing has been around for centuries using simple pigments, but our result demonstrates for the first time that inks based on graphene and related materials can be used to produce textiles that could store and release energy,鈥 said co-author Professor Chaoxia Wang from Jiangnan 探花直播 in China. 鈥淥ur process is scalable and there are no fundamental obstacles to the technological development of wearable electronic devices both in terms of their complexity and performance.鈥

探花直播work done by the Cambridge researchers opens a number of commercial opportunities for ink based on two-dimensional materials, ranging from personal health and well-being technology, to wearable energy and data storage, military garments, wearable computing and fashion.

鈥淭urning textiles into functional energy storage elements can open up an entirely new set of applications, from body-energy harvesting and storage to the Internet of Things,鈥 said Torrisi 鈥淚n the future our clothes could incorporate these textile-based charge storage elements and power wearable textile devices.鈥

探花直播research was supported by the Engineering and Physical Science Research Council, the Newton Trust, the National Natural Science Foundation of China and the Ministry of Science and Technology of China. 探花直播technology is being commercialised by Cambridge Enterprise, the 探花直播鈥檚 commercialisation arm.

Reference:
Qiang, S et al. 鈥.鈥 Nanoscale (2019). DOI: 10.1039/C9NR00463G



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