Department of Electronic Engineering, Micro/Nano Devices & packaging Lab., Kwangwoon University, 447-1, Wolgye-Dong, Nowon Gu, Seoul 139-701, Republic of Korea.
Department of Electronic Engineering, Micro/Nano Devices & packaging Lab., Kwangwoon University, 447-1, Wolgye-Dong, Nowon Gu, Seoul 139-701, Republic of Korea.
Biosens Bioelectron. 2018 Nov 30;120:160-167. doi: 10.1016/j.bios.2018.07.071. Epub 2018 Aug 1.
Recently, highly stretchable and flexible electrodes essential for wearable electronic devices has been reported. However, their electrical resistances are high, the fabrication processes are complicated and involve a high cost, and deformations such as stretching can lead to the degradation on electrical performance. To address these issues, a novel fabrication process (both inexpensive and simple) for the highly stretchable and conductive electrodes using well patterned 3D porous laser-induced graphene silver nanocomposite was developed. The fabricated electrode exhibited a high, uniform electrical conductivity even under mechanical deformations. Addition of platinum and gold nanoparticles (PtAuNP) on the 3D porous LIG greatly improved the electrochemical performance for wearable glucose sensor applications. The fabricated glucose sensor exhibited low detection limit (5 µM), and acceptable detection range from 0 to 1.1 mM (covers the glucose range in sweat), and high linearity (0.99). In addition, the fabricated pH sensor also exhibited a linear response (66 mV/pH) at the range from 4 to 7. This work successfully demonstrates the potential of this novel fabrication technique and stretchable LIG metal nanocomposite for wearable electrochemical-physiological hybrid biosensors.
最近,已经报道了对于可穿戴电子设备来说非常重要的高拉伸性和柔韧性电极。然而,它们的电阻较高,制造工艺复杂且成本高,而且拉伸等变形会导致电性能下降。为了解决这些问题,开发了一种使用图案化的 3D 多孔激光诱导石墨烯银纳米复合材料的新型制造工艺(既便宜又简单),用于制造高拉伸性和导电性电极。制造的电极即使在机械变形下也表现出高且均匀的导电性。在 3D 多孔 LIG 上添加铂和金纳米粒子(PtAuNP)极大地提高了可穿戴葡萄糖传感器应用的电化学性能。所制造的葡萄糖传感器具有低检测限(5µM),可接受的检测范围从 0 到 1.1mM(覆盖汗液中的葡萄糖范围),以及高线性度(0.99)。此外,所制造的 pH 传感器在 4 到 7 的范围内也表现出线性响应(66mV/pH)。这项工作成功地展示了这种新型制造技术和可拉伸 LIG 金属纳米复合材料在可穿戴电化学生理混合生物传感器中的潜力。