{"title":"异质结构多孔COF-5/Ti3C2Tx阴极可穿戴、可回收、可植入储能装置用于高性能锌离子混合电容器","authors":"Panpan Xie, Yu Zhang, Zengming Man, Jianhua Zhou, Yongzhe Zhang, Wangyang Lu, Heng Dong, Guan Wu","doi":"10.1002/adfm.202421517","DOIUrl":null,"url":null,"abstract":"<p>With the continuous advancement of the internet of things and information technology, implantable bioelectronics have attracted considerable attention for effective health monitoring and improvement of vital signs. Nevertheless, conventional power sources are typically plagued by short lifetimes, inflexible packaging modalities, and toxic corrosion risks that damage soft tissues. In this study, a biocompatible quasi-solid-state aqueous Zn-ion hybrid capacitor (AZIHCs) is developed with high energy density and durability. The heterostructured porous COF-5/Ti<sub>3</sub>C<sub>2</sub>T<sub>x</sub> cathode exhibited enhanced interface charge transfer and accelerated Zn<sup>2+</sup> migration kinetics, delivering an outstanding areal capacitance of 952 mF cm<sup>−2</sup> and a high areal energy density of 160 mWh cm<sup>−2</sup>. Furthermore, the AZIHCs demonstrated a high reversible capacity of 524 mF cm⁻<sup>2</sup>, and the completely damaged device can still power the electronics after being reconnected using the superior silk nanofiber-containing zwitterionic hydrogel electrolyte. These implanted AZIHCs, with good biocompatibility, showed substantial deformation stability of 80.2% after 2000 cycles when firmly adhered to the tissues, illustrating an impressively stable performance in the tissue fluid or wetted tissue surface and an efficient power supply. This study provides a novel approach to high-performance energy storage devices for multifunctional wearable applications and organism patches for in vivo detection.</p>","PeriodicalId":112,"journal":{"name":"Advanced Functional Materials","volume":"35 19","pages":""},"PeriodicalIF":19.0000,"publicationDate":"2024-12-31","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Wearable, Recoverable, and Implantable Energy Storage Devices With Heterostructure Porous COF-5/Ti3C2Tx Cathode for High-performance Aqueous Zn-ion Hybrid Capacitor\",\"authors\":\"Panpan Xie, Yu Zhang, Zengming Man, Jianhua Zhou, Yongzhe Zhang, Wangyang Lu, Heng Dong, Guan Wu\",\"doi\":\"10.1002/adfm.202421517\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>With the continuous advancement of the internet of things and information technology, implantable bioelectronics have attracted considerable attention for effective health monitoring and improvement of vital signs. Nevertheless, conventional power sources are typically plagued by short lifetimes, inflexible packaging modalities, and toxic corrosion risks that damage soft tissues. In this study, a biocompatible quasi-solid-state aqueous Zn-ion hybrid capacitor (AZIHCs) is developed with high energy density and durability. The heterostructured porous COF-5/Ti<sub>3</sub>C<sub>2</sub>T<sub>x</sub> cathode exhibited enhanced interface charge transfer and accelerated Zn<sup>2+</sup> migration kinetics, delivering an outstanding areal capacitance of 952 mF cm<sup>−2</sup> and a high areal energy density of 160 mWh cm<sup>−2</sup>. Furthermore, the AZIHCs demonstrated a high reversible capacity of 524 mF cm⁻<sup>2</sup>, and the completely damaged device can still power the electronics after being reconnected using the superior silk nanofiber-containing zwitterionic hydrogel electrolyte. These implanted AZIHCs, with good biocompatibility, showed substantial deformation stability of 80.2% after 2000 cycles when firmly adhered to the tissues, illustrating an impressively stable performance in the tissue fluid or wetted tissue surface and an efficient power supply. 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引用次数: 0
摘要
随着物联网和信息技术的不断发展,植入式生物电子学在有效监测健康和改善生命体征方面受到广泛关注。然而,传统的电源通常受到寿命短、包装形式不灵活以及有毒腐蚀风险的困扰,这些风险会损害软组织。本研究开发了一种具有高能量密度和耐久性的准固态水溶液锌离子杂化电容器(azihc)。异质结构多孔COF-5/Ti3C2Tx阴极表现出增强的界面电荷转移和加速的Zn2+迁移动力学,具有952 mF cm - 2的出色面电容和160 mWh cm - 2的高面能密度。此外,azihc的可逆容量高达524 mF - cm - 2,完全损坏的设备在使用含有两性离子水凝胶电解质的优质丝纳米纤维重新连接后,仍然可以为电子设备供电。这些植入的azihc具有良好的生物相容性,在与组织牢固粘附的情况下,在2000次循环后显示出80.2%的变形稳定性,表明在组织液或湿润组织表面具有令人印象深刻的稳定性能,并且具有高效的供电能力。该研究为多功能可穿戴应用的高性能能量存储设备和用于体内检测的生物贴片提供了一种新方法。
Wearable, Recoverable, and Implantable Energy Storage Devices With Heterostructure Porous COF-5/Ti3C2Tx Cathode for High-performance Aqueous Zn-ion Hybrid Capacitor
With the continuous advancement of the internet of things and information technology, implantable bioelectronics have attracted considerable attention for effective health monitoring and improvement of vital signs. Nevertheless, conventional power sources are typically plagued by short lifetimes, inflexible packaging modalities, and toxic corrosion risks that damage soft tissues. In this study, a biocompatible quasi-solid-state aqueous Zn-ion hybrid capacitor (AZIHCs) is developed with high energy density and durability. The heterostructured porous COF-5/Ti3C2Tx cathode exhibited enhanced interface charge transfer and accelerated Zn2+ migration kinetics, delivering an outstanding areal capacitance of 952 mF cm−2 and a high areal energy density of 160 mWh cm−2. Furthermore, the AZIHCs demonstrated a high reversible capacity of 524 mF cm⁻2, and the completely damaged device can still power the electronics after being reconnected using the superior silk nanofiber-containing zwitterionic hydrogel electrolyte. These implanted AZIHCs, with good biocompatibility, showed substantial deformation stability of 80.2% after 2000 cycles when firmly adhered to the tissues, illustrating an impressively stable performance in the tissue fluid or wetted tissue surface and an efficient power supply. This study provides a novel approach to high-performance energy storage devices for multifunctional wearable applications and organism patches for in vivo detection.
期刊介绍:
Firmly established as a top-tier materials science journal, Advanced Functional Materials reports breakthrough research in all aspects of materials science, including nanotechnology, chemistry, physics, and biology every week.
Advanced Functional Materials is known for its rapid and fair peer review, quality content, and high impact, making it the first choice of the international materials science community.