Research Center for Advanced Materials Technology, Core Research Institute, Sungkyunkwan University, 2066 Seobu-ro, Jangan-gu, Suwon 16419, Gyeonggi-do ,Republic of Korea.
Department of Smart Fab Technology, Sungkyunkwan University, 2066 Seobu-ro, Jangan-gu, Suwon 16419, Gyeonggi-do, Republic of Korea.
ACS Appl Mater Interfaces. 2023 Jun 21;15(24):29486-29498. doi: 10.1021/acsami.3c06060. Epub 2023 Jun 9.
The increasing prevalence of health problems stemming from sedentary lifestyles and evolving workplace cultures has placed a substantial burden on healthcare systems. Consequently, remote health wearable monitoring systems have emerged as essential tools to track individuals' health and well-being. Self-powered triboelectric nanogenerators (TENGs) have exhibited significant potential for use as emerging detection devices capable of recognizing body movements and monitoring breathing patterns. However, several challenges remain to be addressed in order to fulfill the requirements for self-healing ability, air permeability, energy harvesting, and suitable sensing materials. These materials must possess high flexibility, be lightweight, and have excellent triboelectric charging effects in both electropositive and electronegative layers. In this work, we investigated self-healable electrospun polybutadiene-based urethane (PBU) as a positive triboelectric layer and titanium carbide (TiCT) MXene as a negative triboelectric layer for the fabrication of an energy-harvesting TENG device. PBU consists of maleimide and furfuryl components as well as hydrogen bonds that trigger the Diels-Alder reaction, contributing to its self-healing properties. Moreover, this urethane incorporates a multitude of carbonyl and amine groups, which create dipole moments in both the stiff and the flexible segments of the polymer. This characteristic positively influences the triboelectric qualities of PBU by facilitating electron transfer between contacting materials, ultimately resulting in high output performance. We employed this device for sensing applications to monitor human motion and breathing pattern recognition. The soft and fibrous-structured TENG generates a high and stable open-circuit voltage of up to 30 V and a short-circuit current of 4 μA at an operation frequency of 4.0 Hz, demonstrating remarkable cyclic stability. A significant feature of our TENG is its self-healing ability, which allows for the restoration of its functionality and performance after sustaining damage. This characteristic has been achieved through the utilization of the self-healable PBU fibers, which can be repaired via a simple vapor solvent method. This innovative approach enables the TENG device to maintain optimal performance and continue functioning effectively even after multiple uses. After integration with a rectifier, the TENG can charge various capacitors and power 120 LEDs. Moreover, we employed the TENG as a self-powered active motion sensor, attaching it to the human body to monitor various body movements for energy-harvesting and sensing purposes. Additionally, the device demonstrates the capability to recognize breathing patterns in real time, offering valuable insights into an individual's respiratory health.
源于久坐生活方式和不断演变的工作场所文化的健康问题日益普遍,给医疗保健系统带来了巨大负担。因此,远程健康可穿戴监测系统已成为跟踪个人健康和幸福的重要工具。自供电的摩擦纳米发电机 (TENG) 已显示出作为新兴检测设备的巨大潜力,能够识别身体运动和监测呼吸模式。然而,为了满足自修复能力、透气性、能量收集和合适的传感材料的要求,仍有一些挑战需要解决。这些材料必须具有高柔韧性、重量轻,并且在正电和负电层中都具有出色的摩擦带电充电效果。在这项工作中,我们研究了自修复的电纺聚丁二烯基聚氨酯 (PBU) 作为正摩擦电层和碳化钛 (TiCT) MXene 作为负摩擦电层,用于制造能量收集 TENG 设备。PBU 由马来酰亚胺和糠基组件以及引发 Diels-Alder 反应的氢键组成,有助于其自修复性能。此外,这种聚氨酯含有许多羰基和胺基,在聚合物的刚性和柔性部分都产生偶极矩。这一特性通过促进接触材料之间的电子转移,对 PBU 的摩擦带电性质产生积极影响,最终导致高输出性能。我们使用该设备进行传感应用,以监测人体运动和呼吸模式识别。柔软的纤维状 TENG 产生高达 30 V 的高且稳定的开路电压和 4.0 Hz 操作频率下的 4 μA 短路电流,表现出出色的循环稳定性。我们的 TENG 的一个显著特点是其自修复能力,这使得它在受到损坏后能够恢复其功能和性能。这一特性是通过利用自修复的 PBU 纤维实现的,这些纤维可以通过简单的蒸气溶剂方法进行修复。这种创新方法使 TENG 设备能够在多次使用后保持最佳性能并继续有效运行。在与整流器集成后,TENG 可以为各种电容器充电并为 120 个 LED 供电。此外,我们将 TENG 用作自供电主动运动传感器,将其附着在人体上,以进行能量收集和传感目的的各种身体运动监测。此外,该设备还能够实时识别呼吸模式,为个人的呼吸健康提供有价值的见解。