生物电子学
纳米技术
半导体
材料科学
有机半导体
晶体管
制作
共形矩阵
电化学
光电子学
电解质
功能(生物学)
薄膜晶体管
生物传感器
场效应晶体管
半导体器件
水溶液
有机电子学
载流子
导电聚合物
半导体工业
作者
Lin Gao,Yongjoon Cho,Rui Wang,Yao Yao,Dayong,Yifan Wang,Yongfa Cheng,Yuyang Wang,Qing Ma,Isaiah Duplessis,S. H. Chung,Evan Wilson,Kilwon Cho,Binghao Wang,Lu Li,Jonathan Rivnay,Hong Wang,Junsheng Yu,Tobin J. Marks,Antonio Facchetti
标识
DOI:10.1073/pnas.2523877123
摘要
Organic semiconductors offering efficient mixed ionic-electronic charge transport are key components of organic electrochemical transistors (OECTs) needed for future bioelectronics and other technologies. However, hydrophobic semiconductors typically have limited ion mobility and are unstable in aqueous environments, restricting OECT applications. To address these issues, we report a broadly applicable strategy for high-performance OECTs by blending polymeric semiconductors with a photocrosslinkable hydrophilic ion-conducting supplement, poly(ethyleneglycol)-dimethylacrylate (PEGDMA). The result is ordered, interconnected semiconductor domains within an amorphous ion-conducting matrix, enabling rapid and reversible doping/dedoping without compromising charge transport. This approach enhances OECT performance across diverse electrolytes, semiconductors, and device architectures. Furthermore, PEGDMA enables high-resolution photopatterning of both semiconductors (<0.4 μm) and electrolytes (<2 μm), affording high-stability OECTs sustaining >10,000 cycles. This approach also enables wafer-scale array fabrication of 2,548 OECTs on 2" wafer, and miniaturized inverter, NAND, and NOR circuits. Also demonstrated are integration of these OECTs with a photosensor, creating a vision sensing array (10 × 10 pixels) that mimics visual image processing similar to the brain's perception system.
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