Highly Resistive Biomembranes Coupled to Organic Transistors enable Ion-Channel Mediated Neuromorphic Synapses

IF 5.3 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Advanced Electronic Materials Pub Date : 2024-11-05 DOI:10.1002/aelm.202400526
Joshua J. Maraj, Emily A. Schafer, Michelle M. Mansour, Essraa A. Hussein, Joseph Berryman, Elizabeth Klavon, Jonathan Rivnay, Stephen A. Sarles
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Abstract

Organic electrochemical transistors (OECTs) functionalized with lipid membranes could enable new hybrid synapses for sensing and neuromorphic computing in biological media. However, prior attempts to pair these components resulted in low quality membranes formed on the OECT surface. We present a new method for forming a highly-resistive phospholipid bilayer coupled to a poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT:PSS) OECT that avoids the disruptive effects of the rough polymer surface. Transistor coupled droplet bilayers (TCDBs) formed from diphytanoyl phosphatidylcholine lipids exhibit an average specific resistance that is 1000X higher than values reported for solid-supported lipid membranes assembled on PEDOT:PSS. High membrane resistance and the addition of voltage-activated ionophores enable us to demonstrate that selective ion transport and spontaneous membrane resealing in response to dynamic gate voltage imparts selective programming and memory-storage capability to an OECT without chemical modification of the PEDOT:PSS. These capabilities enable paired-pulse facilitation and depression with writing speeds and memory retentions that are both >10X higher than previously reported with membrane-coated OECTs. The high resistance of the TCDB establishes a basis for hybrid biomolecular synapses that can integrate stimuli-responsive membranes and organic electronics for future applications in sensing, signal processing, and neuromorphic computing at the edge of biology.

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与有机晶体管耦合的高阻生物膜可实现离子通道介导的神经形态突触
具有脂质膜功能的有机电化学晶体管(OECTs)可实现新的混合突触,用于生物介质中的传感和神经形态计算。然而,之前配对这些元件的尝试导致在 OECT 表面形成的膜质量不高。我们提出了一种形成与聚(3,4-亚乙二氧基噻吩)聚苯乙烯磺酸盐(PEDOT:PSS)OECT 相耦合的高阻磷脂双分子层的新方法,它避免了粗糙聚合物表面的破坏性影响。由二氢塔酰基磷脂酰胆碱脂质形成的晶体管耦合液滴双层膜(TCDBs)显示出的平均比电阻比已报道的组装在 PEDOT:PSS 上的固体支撑脂质膜的值高 1000 倍。高膜电阻和添加电压激活的离子发生器使我们能够证明,选择性离子传输和自发膜重新封闭对动态栅极电压的响应使 OECT 具有选择性编程和记忆存储能力,而无需对 PEDOT:PSS 进行化学修饰。这些功能实现了成对脉冲促进和抑制,其写入速度和记忆保持时间都比之前报道的膜包覆 OECT 高出 10 倍。TCDB 的高电阻为混合生物分子突触奠定了基础,这种突触可以集成刺激响应膜和有机电子器件,未来可应用于生物边缘的传感、信号处理和神经形态计算。
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来源期刊
Advanced Electronic Materials
Advanced Electronic Materials NANOSCIENCE & NANOTECHNOLOGYMATERIALS SCIE-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
11.00
自引率
3.20%
发文量
433
期刊介绍: Advanced Electronic Materials is an interdisciplinary forum for peer-reviewed, high-quality, high-impact research in the fields of materials science, physics, and engineering of electronic and magnetic materials. It includes research on physics and physical properties of electronic and magnetic materials, spintronics, electronics, device physics and engineering, micro- and nano-electromechanical systems, and organic electronics, in addition to fundamental research.
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