Kang Dongwon, Lee Jong Ik, Maeng Bohee, Lee Seyeon, Kwon Yongseok, Kang Moon Sung, Park Jungyul, Kim Jungwook
Department of Chemical and Biomolecular Engineering, Sogang University, Seoul 04107, Republic of Korea.
Department of Mechanical Engineering, Sogang University, Seoul 04107, Republic of Korea.
ACS Nano. 2022 Oct 25;16(10):15827-15836. doi: 10.1021/acsnano.2c05452. Epub 2022 Sep 7.
Smart contact lenses have the potential to serve as noninvasive healthcare devices or virtual displays. However, their implementation is limited by the lack of suitable power sources for microelectronic devices. This Article demonstrates smart contact lenses with fully embedded glucose fuel cells that are safe, flexible, and durable against deformations. These fuel cells produced stable power throughout the day or during intermittent use after storage for weeks. When the lenses were exposed to 0.05 mM glucose solution, a steady-state maximum power density of 4.4 μW/cm was achieved by optimizing the chemistry and porous structure of the fuel cell components. Additionally, even after bending the lenses in half 100 times, the fuel cell performance was maintained without any mechanical failure. Lastly, when the fuel cells were connected to electroresponsive hydrogel capacitors, we could clearly distinguish between the tear glucose levels under normal and diabetic conditions through the naked eye.
智能隐形眼镜有潜力成为非侵入性医疗设备或虚拟显示器。然而,其应用受到微电子设备缺乏合适电源的限制。本文展示了具有完全嵌入式葡萄糖燃料电池的智能隐形眼镜,该电池安全、灵活且耐变形。这些燃料电池在储存数周后全天或间歇性使用期间都能产生稳定的电力。当镜片暴露于0.05 mM葡萄糖溶液中时,通过优化燃料电池组件的化学性质和多孔结构,实现了4.4 μW/cm的稳态最大功率密度。此外,即使将镜片对折100次后,燃料电池性能仍能保持,没有任何机械故障。最后,当燃料电池连接到电响应水凝胶电容器时,我们可以通过肉眼清晰地区分正常和糖尿病条件下的泪液葡萄糖水平。