材料科学
电解质
离子电导率
化学工程
芦荟
生物相容性
电容
电导率
电化学
离子液体
离子键合
水溶液
电极
纳米技术
三羟甲基丙烷
离子强度
电导
电化学窗口
晶体管
流变学
纳米
多元醇
跨导
作者
Getnet S. Kassahun,Reem El Attar,Mamatimin Abbas,Damien Thuau
标识
DOI:10.1021/acsami.5c21711
摘要
Organic electrochemical transistors (OECTs) require electrolytes that unite high ionic conductivity and mechanical compliance with intrinsic biocompatibility and sustainability, a combination difficult to achieve by conventional aqueous liquids, ionic liquids, or synthetic hydrogels. Here, we demonstrate that a natural aloe vera gel can serve as a single-component quasi-solid electrolyte for high-performance OECTs, leveraging its native minerals (Ca2+, K+, Na+, Mg2+ ions) and high-water content. Rheological tests confirm a soft, viscoelastic gel network, and electrical measurements reveal an ionic conductivity of ∼6.1 mS/cm with interfacial capacitance of ∼58.5 μF/cm2. In OECT devices, the aloe electrolyte yields high-performance transistors: peak transconductance of ∼11 mS and ON-current of ∼6.5 mA, comparable to conventional phosphate buffered saline (PBS) gating. Transient analysis confirmed rapid switching kinetics, with high stability demonstrated by >96% drain current retention after 100 cycles. These results establish natural aloe vera gel as a unique, non-diffusion-limited, inherently biocompatible and biodegradable gating medium, overturning expectations of slow solid-state performance and charting a path toward truly sustainable ("green") bioelectronic systems.
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