Choi Juwan, Lee Soohoon, Joshi Shalik Ram, Kim Sunghwan
Department of Electronic Engineering, Hanyang University, Seoul 04763, Republic of Korea.
Department of Electronic Engineering, Hanyang University, Seoul 04763, Republic of Korea; Department of Biomedical Engineering, Hanyang University, Seoul 04763, Republic of Korea.
Int J Biol Macromol. 2025 May;308(Pt 4):142707. doi: 10.1016/j.ijbiomac.2025.142707. Epub 2025 Apr 1.
Skin, the largest organ protecting the body, acts as a pathway connecting the inside and outside of the body, allowing us to examine health conditions. Therefore, on-skin electronics are attractive for monitoring biosignals in daily life for point-on-care healthcare. However, integrating highly conductive electrodes while maintaining all the properties suitable for on-skin devices, such as flexibility, imperceptibility, breathability, and biocompatibility, is still challenging. Here, we present breathable and imperceptible electronic tattoos (E-tattoos), on which highly conductive gold (Au) electrodes are integrated. The E-tattoo, which a hybrid of two nanostructured biomaterials, ultrathin silk film and cellulose nanofiber mat, possesses all favorable properties for on-skin electronics. Due to the inherent strong adhesion of silk to Au, patterned Au electrodes, with a high conductivity (2.84 × 10 S/m) comparable to that of pure Au (4.01 × 10 S/m), can be integrated on the E-tattoo. High water-vapor transmission and low leakage current through E-tattoos provide skin-compatibility (nonirritating response). With these advantages, the E-tattoo is applied to monitor skin hydration. On-skin impedance measurements reveal dependency on skin hydration, and impedances measured with E-tattoos show better signal stability than those measured for Au nanomesh patches. This study presents a new on-skin electronic platform for monitoring skin conditions.
皮肤作为保护身体的最大器官,充当着连接身体内外的通道,使我们能够检查健康状况。因此,可穿戴电子设备对于在日常生活中监测生物信号以实现即时医疗保健具有吸引力。然而,在保持适合可穿戴设备的所有特性(如柔韧性、不可察觉性、透气性和生物相容性)的同时集成高导电电极仍然具有挑战性。在此,我们展示了透气且不可察觉的电子纹身(E纹身),其上集成了高导电金(Au)电极。这种E纹身是由两种纳米结构生物材料——超薄丝膜和纤维素纳米纤维垫——混合而成,具备可穿戴电子设备所需的所有优良特性。由于丝与金之间固有的强附着力,具有与纯金(4.01×10 S/m)相当的高电导率(2.84×10 S/m)的图案化金电极能够集成在E纹身上。通过E纹身的高水蒸气透过率和低漏电流提供了皮肤兼容性(无刺激反应)。凭借这些优势,E纹身被应用于监测皮肤水分含量。皮肤阻抗测量揭示了其对皮肤水分含量的依赖性,并且用E纹身测量的阻抗显示出比用金纳米网片测量的阻抗更好的信号稳定性。本研究展示了一种用于监测皮肤状况的新型可穿戴电子平台。