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采用运动服装面料中的长期高速流动的可持续高功率可穿戴葡萄糖生物燃料电池。

Sustainable and high-power wearable glucose biofuel cell using long-term and high-speed flow in sportswear fabrics.

作者信息

Wang Cong, Shim Euijin, Chang Hyung-Kwan, Lee Nuree, Kim Hye Rim, Park Jungyul

机构信息

Department of Mechanical Engineering, Sogang University, 35 Baekbeom-ro (Sinsu-dong), Mapo-gu, Seoul, 04107, Republic of Korea.

Department of Clothing and Textiles, Sookmyung Women's University, 100 Cheongpa-ro 47-gil (Cheongpa-dong 2ga), Yongsan-gu, Seoul, 04310, Republic of Korea.

出版信息

Biosens Bioelectron. 2020 Dec 1;169:112652. doi: 10.1016/j.bios.2020.112652. Epub 2020 Sep 24.

Abstract

Wearable electronics have been extensively studied owing to their capability of undertaking continuous multi-task for daily needs. Meanwhile, lightweight, flexible, and wearable power sources that enable high-power and sustainable energy conversion from ambient resources (e.g. bodily fluids) have attracted attention. We propose a wearable and flexible textile-based biofuel cell using moisture management fabric (MMF) widely used in sportswear as a transport layer for sustainable and high-power energy harvesting. The reduction of PB-modified cathode is driven by the oxidation of glucose catalyzed by GOD-modified anode, and this enables a single-compartment structure where MMF acts as biofuel transport media. MMF made of polyester can naturally induce a continuous, high-speed flow which facilitates molecule transport for efficient chemical reactions without an additional pump. The resulting highly efficient power generation in MMF is explored and verified by comparing it with those of cotton and paper. Additionally, multi-stack biofuel cell in both parallel and series was successfully realized, and the open circuit voltage and maximum power reached 1.08 V and 80.2 μW, respectively. Integrated into a bandage and sportswear, a six-stack biofuel cell was able to generate sufficient electrical power from human sweat and turn on a sports watch directly. Owing to low-cost and scalable fabrication process, the proposed biofuel cell has great potential to be systematically integrated into clothes, and generate sufficient and sustainable electrical power for wearable electronics using biofuel (e.g. glucose, lactase) from various bodily fluids, like sweat and urine.

摘要

由于可穿戴电子产品能够满足日常需求进行连续多任务处理,因此受到了广泛研究。与此同时,能够实现从环境资源(如体液)进行高功率和可持续能量转换的轻质、柔性且可穿戴的电源也引起了人们的关注。我们提出了一种基于可穿戴柔性纺织品的生物燃料电池,该电池使用运动服装中广泛使用的吸湿排汗织物(MMF)作为传输层,以实现可持续的高功率能量收集。PB修饰的阴极的还原由GOD修饰的阳极催化的葡萄糖氧化驱动,这使得MMF作为生物燃料传输介质的单室结构成为可能。由聚酯制成的MMF能够自然地诱导连续、高速的流动,这有助于分子传输以实现高效化学反应,而无需额外的泵。通过将MMF与棉花和纸张的高效发电进行比较,对其进行了探索和验证。此外,成功实现了并联和串联的多堆叠生物燃料电池,开路电压和最大功率分别达到1.08 V和80.2 μW。集成到绷带和运动服装中的六堆叠生物燃料电池能够从人体汗液中产生足够的电能,并直接开启一块运动手表。由于低成本且可扩展的制造工艺,所提出的生物燃料电池具有很大的潜力被系统地集成到衣服中,并利用来自各种体液(如汗液和尿液)中的生物燃料(如葡萄糖、乳糖酶)为可穿戴电子产品产生足够且可持续的电能。

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