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Smart garment energy generators fabricated using stretchable electrospun nanofibers

机译:使用可拉伸电纺纳米纤维制造的智能服装能量发生器

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摘要

In this study, we fabricated smart garments (SGs) based on nanoconductive fibers (NCFs) employing single-capillary electrospun stretchable styrene-butadiene-styrene nanofibers coated with silver nanoparticles. NCFs were dip-coated with pristine polytetrafluoroethylene (PTFE), intrinsically stretchable polymer pristine polyurethane (PU), and three different PTFE PU blends to generate five different coated nanoconductive fibers (CNCFs). SGs for electricity generation and harvesting were fabricated by intertwining the NCFs and CNCFs. The SG based on pristine-PTFE-coated NCFs showed poor performance, owing to the rigidity of PTFE. Optimization of the PU polymer ratio and the power generation mechanism of the SGs was analyzed using various techniques. The SG with a PTFE:PU ratio of 8:2 generated the highest output current (9.86 nA) and was mechanically robust even under a high level of stretching (50%). Moreover, this SG was durable up to 175 stretching relaxation cycles and could still deliver significant output current (2.88 nA). Strontium aluminate was dip-coated on the optimized SG to fabricate an incorporated smart garment (ISG) with improved light generation efficiency. The as-prepared ISG can be used in the future as a lightweight, reproducible, and renewable energy harvester.
机译:在这项研究中,我们基于纳米导电纤维(NCFs)的智能服装(SGs),采用单毛细管电纺可拉伸的苯乙烯-丁二烯-苯乙烯纳米纤维涂覆了银纳米颗粒。 NCFs用原始聚四氟乙烯(PTFE),固有可拉伸的聚合物原始聚氨酯(PU)和三种不同的PTFE PU共混物进行浸涂,以产生五种不同的涂覆纳米导电纤维(CNCF)。通过将NCF和CNCF缠绕在一起来制造用于发电和收获的SG。基于原始PTFE涂层的NCF的SG由于PTFE的刚性而显示出较差的性能。使用各种技术分析了PU聚合物比例的优化和SGs的发电机理。 PTFE:PU比为8:2的SG产生最高的输出电流(9.86 nA),即使在高拉伸水平(50%)下也具有机械坚固性。此外,该SG可以承受多达175个拉伸松弛周期,并且仍然可以提供可观的输出电流(2.88 nA)。将铝酸锶浸涂在优化的SG上,以制造具有改进的光产生效率的内置智能服装(ISG)。准备好的ISG可以在将来用作轻型,可复制和可再生的能源收集器。

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