Antonova Irina V, Ivanov Artem I, Shavelkina Marina B, Poteryayev Dmitriy A, Buzmakova Anna A, Soots Regina A
Rzhanov Institute of Semiconductor Physics SB RAS, 13 Lavrentiev Av., Novosibirsk 630090, Russia.
Department of Semiconductor Devices and Microelectronics, Novosibirsk State Technical University, 20 K. Marx Str., Novosibirsk 630073, Russia.
Phys Chem Chem Phys. 2024 Feb 28;26(9):7844-7854. doi: 10.1039/d3cp05953g.
A unique nanomaterial has been developed for sweat analysis, including glucose level monitoring. Simple resusable low-cost sensors from composite materials based on graphene, hexagonal boron nitride, and conductive PEDOT:PSS (poly(3,4-ethylenedioxythiophene)polystyrene sulfonate) polymer have been developed and fabricated 2D printing on flexible substrates. The sensors were tested as biosensors using different water-based solutions. A strong increase in the current response (several orders of magnitude) was observed for aqua vapors or glucose solution vapors. This property is associated with the sorption capacity of graphene synthesized in a volume of plasma jets and thus having many active centers on the surface. The structure and properties of graphene synthesized in a plasma are different from those of graphene created by other methods. As a result, the current response for a wearable sensor is 3-5 orders of magnitude higher for the reference blood glucose concentration range of 4-14 mM. It has been found that the most promising sensor with the highest response was fabricated based on the graphene:PEDOT:PSS composite. The graphene:h-BN:PEDOT:PSS (h-BN is hexagonal boron nitride) sensors demonstrated a longer response and the highest response after the functionalization of the sensors with a glucose oxidase enzyme. The reusable wearable graphene:PEDOT:PSS glucose sensors on a paper substrate demonstrated a current response of 10 to 10 A for an operating voltage of 0.5 V and glucose range of 4-10 mM.
一种用于汗液分析(包括葡萄糖水平监测)的独特纳米材料已被开发出来。基于石墨烯、六方氮化硼和导电聚(3,4-乙撑二氧噻吩)聚苯乙烯磺酸盐(PEDOT:PSS)聚合物的复合材料制成的简单可重复使用的低成本传感器,已通过二维打印技术制备在柔性基板上。这些传感器使用不同的水基溶液作为生物传感器进行了测试。对于水蒸气或葡萄糖溶液蒸气,观察到电流响应有显著增加(几个数量级)。这种特性与在等离子体射流中合成的石墨烯的吸附能力有关,因此其表面有许多活性中心。等离子体中合成的石墨烯的结构和性质与通过其他方法制备的石墨烯不同。结果,对于可穿戴传感器,在4-14 mM的参考血糖浓度范围内,电流响应要高3-5个数量级。已发现基于石墨烯:PEDOT:PSS复合材料制备的传感器响应最高,最具前景。石墨烯:六方氮化硼:PEDOT:PSS(h-BN是六方氮化硼)传感器在用葡萄糖氧化酶对传感器进行功能化后,表现出更长的响应时间和最高的响应。纸质基板上的可重复使用的可穿戴石墨烯:PEDOT:PSS葡萄糖传感器在0.5 V的工作电压和4-10 mM的葡萄糖范围内,电流响应为10至10 A。