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Ultra-Stable N-Type Semiconducting Fiber Organic Electrochemical Transistors for Highly Sensitive Biosensors.

Xiu WangZhi ZhangPeiyun LiJingcao XuYuting ZhengWenxi SunMingyue XieJuanrong WangXiran PanXun LeiJingyi WangJupeng ChenYiheng ChenShu-Jen WangTing Lei
Published in: Advanced materials (Deerfield Beach, Fla.) (2024)
Organic electrochemical transistors (OECTs) have attracted increasing attention due to their merits of high transconductance, low operating voltage, and good biocompatibility, ideal for biosensors. However, further advances in their practical applications face challenges of low n-type performance and poor stability. Here, we demonstrate that wet-spinning the commercially available n-type conjugated polymer poly(benzimidazobenzophenanthroline) (BBL) into highly aligned and crystalline fibers enhances both OECT performance and stability. Although BBL is only soluble in high-boiling-point strong acids, it can be wet-spun into high-quality fibers with adjustable diameters. Our BBL fiber OECTs exhibit a record-high area-normalized transconductance (g m,A ) of 2.40 μS μm -2 and over 10 times higher figure-of-merit (μC*) than its thin-film counterparts. More importantly, these fiber OECTs exhibit remarkable stability with no noticeable performance attenuation after 1500 cycles over 4 h operation, outperforming all previously reported n-type OECTs. The superior performance and stability can be attributed to shorter π-π stacking distance and ordered molecular arrangement in the fibers, endowing the BBL fiber OECT-based biosensors with outstanding sensitivity while keeping a miniaturized form factor. Our work demonstrates that, beyond new material development, developing new fabrication technology is also crucial for addressing the performance and stability issues in n-type OECTs. This article is protected by copyright. All rights reserved.
Keyphrases
  • high resolution
  • ionic liquid
  • mass spectrometry
  • room temperature
  • tissue engineering
  • living cells
  • low cost