College of Optoelectronic Engineering and Key Laboratory of Optoelectronic Technology & Systems Education Ministry of China, Chongqing University, 400044 Chongqing, China.
School of Electrical Engineering and State Key Laboratory of Power Transmission Equipment & System Security and New Technology, Chongqing University, 400044 Chongqing, China.
J Colloid Interface Sci. 2023 Jan 15;630(Pt A):586-594. doi: 10.1016/j.jcis.2022.10.024. Epub 2022 Oct 13.
The development of wearable electronics has facilitated the growth of flexible energy storage systems, including micro-supercapacitors (MSCs). Thus, it is urgent to fabricate MSCs with both excellent mechanical strength and electrochemical performance. In this work, P-enriched laser-induced graphene (LIG) is fabricated for the first time on Kevlar textiles via the one-step laser direct writing process. Laser engraving is employed on polyvinyl alcohol (PVA)/HPO-coated Kevlar to obtain porous graphene and simultaneously in-situ dope phosphorus in pure LIG. The unreacted gel dopant could be removed by washing in hot water because of the thermal solubility of PVA, therefore the Janus LIG/Kevlar textiles keep well flexible and skin-friendly. Moreover, the phosphorus-doped LIG has optimized porous morphology compared to pure LIG, which benefits the interface between electrolyte and electrodes. The introduction of phosphorus contributes to the electrochemical performance attributed to the optimized porous morphology and pseudocapacitance brought by phosphorus doping. The obtained in-plane MSCs (PMSC-4) on Kevlar textiles present a high areal capacitance of 125.35 mF cm, good cycling stability (over 88% during 10,000 cycles), and flexibility. This work provides a facial and scalable method firstly to fabricate and optimize heteroatom-doping MSCs on Kevlar, showing potential for wearable electronics and electronic textiles.
可穿戴电子设备的发展促进了柔性储能系统的发展,包括微超级电容器(MSCs)。因此,迫切需要制造具有优异机械强度和电化学性能的 MSCs。在这项工作中,通过一步激光直写工艺,首次在 Kevlar 纺织品上制备了富磷激光诱导石墨烯(LIG)。激光雕刻用于聚氧化乙烯(PVA)/HPO 涂覆的 Kevlar,以获得多孔石墨烯,并同时在纯 LIG 中进行原位掺杂磷。由于 PVA 的热溶解度,未反应的凝胶掺杂剂可以通过在热水中洗涤去除,因此 Janus LIG/Kevlar 纺织品保持良好的柔韧性和皮肤友好性。此外,与纯 LIG 相比,磷掺杂的 LIG 具有优化的多孔形态,这有利于电解质和电极之间的界面。磷的引入归因于优化的多孔形态和磷掺杂带来的赝电容,从而提高了电化学性能。在 Kevlar 纺织品上获得的平面 MSC(PMSC-4)具有 125.35 mF cm 的高面电容、良好的循环稳定性(10,000 次循环后超过 88%)和柔韧性。这项工作首次提供了一种简便且可扩展的方法来制造和优化 Kevlar 上的杂原子掺杂 MSCs,展示了在可穿戴电子设备和电子纺织品方面的潜力。