School of Physics Science and Engineering, Tongji University, Shanghai 200092, China.
Shanghai Yangzhi Rehabilitation Hospital (Shanghai Sunshine Rehabilitation Center), School of Medicine, Tongji University, Shanghai 201619, China.
ACS Appl Mater Interfaces. 2024 Nov 13;16(45):62680-62692. doi: 10.1021/acsami.4c13772. Epub 2024 Oct 29.
Eco-friendly sensors fabricated from biocompatible and biodegradable materials are promising candidates for wearable and implantable electronics due to their environmental sustainability and biosafety. This article reports a fully biodegradable electromechanical sensor (FBES) utilizing a sandwich structure with macro ripple structured polylactic acid (PLA) electret films acting as sensitive layers and molybdenum (Mo) sheets serving as electrodes for a wearable device application. The stability of the space charge stored within the PLA film has been enhanced by introducing an internal cellular structure and improving the polarization process. A macro ripple structure of the PLA layer with higher deformation is a great guarantee for boosting the pressure sensitivity. The results indicate that inserting cell microstructures and optimizing the polarization process significantly improve the charge storage stability of PLA films by nearly 55%. This enhancement is attributed to several factors, including the extended charge drift path of the charges in cellular films, a synergy effect of surface charges, and "macroscopic" dipole charges distributed in the cells. The fabricated sensor achieves a high sensitivity of 1000 pC/kPa, a wide pressure detection range of 0.03-62.4 kPa, and satisfactory stability. Such sensors are not only sensitive to body movements but also to subtle physiological signals, satisfying the diverse needs of wearable healthcare. Importantly, all the composition materials of the sensor can be completely degraded after their service, aligning with the environmentally friendly principles of green development.
基于生物相容性和可生物降解材料制造的环保型传感器由于其环境可持续性和生物安全性,是可穿戴和植入式电子设备的理想候选材料。本文报道了一种完全可生物降解的机电传感器(FBES),它采用三明治结构,以具有宏观波纹结构的聚乳酸(PLA)驻极体薄膜作为敏感层,钼(Mo)片作为电极,可用于可穿戴设备应用。通过引入内部细胞结构和改进极化过程,提高了 PLA 薄膜中存储的空间电荷的稳定性。PLA 层的宏观波纹结构具有更高的变形,这是提高压力灵敏度的重要保证。结果表明,插入细胞微观结构和优化极化过程可使 PLA 薄膜的电荷存储稳定性显著提高近 55%。这种增强归因于几个因素,包括细胞薄膜中电荷的扩展电荷漂移路径、表面电荷的协同效应以及分布在细胞中的“宏观”偶极电荷。所制备的传感器具有 1000 pC/kPa 的高灵敏度、0.03-62.4 kPa 的宽检测压力范围和令人满意的稳定性。这种传感器不仅对身体运动敏感,而且对微妙的生理信号也敏感,满足了可穿戴式医疗保健的多样化需求。重要的是,传感器的所有组成材料在使用后都可以完全降解,符合绿色发展的环保原则。