Haoran Tang, Yuanying Liang, Chi-Yuan Yang, Xi Luo, Jiangkai Yu, Kai Zhang, Simone Fabiano and Fei Huang
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In this study, hydrophilic polyethylene glycol (PEG) side chains were incorporated into the highly conductive n-type polymer poly(3,7-dihydrobenzo[1,2-<em>b</em>:4,5-<em>b</em>′]difuran-2,6-dione) (PBFDO) backbone to achieve this goal. The incorporation of PEG chains improved ion accessibility, and by adjusting the PEG content, the electronic and ionic transport properties were fine-tuned, ultimately enhancing the performance of OECTs and related p–n complementary circuits. The n-type OECTs based on PBFDO-PEG50wt% demonstrated exceptional transfer characteristics, including a transient response time (<em>τ</em><small><sub>ON</sub></small>) as low as 72 μs, a high geometry-normalized transconductance exceeding 400 S cm<small><sup>−1</sup></small>, and an impressive <em>μC</em>* value surpassing 720 F cm<small><sup>−1</sup></small> V<small><sup>−1</sup></small> s<small><sup>−1</sup></small>. Notably, the use of PBFDO-PEG50wt% in a complementary inverter resulted in a voltage gain of 20 V/V, more than five times higher than that achieved with unmodified PBFDO (<4 V/V). These findings highlight the importance of balancing electron and ion transport characteristics in OMIECs to achieve high performance in OECTs and their associated circuits, and they validate PEG decoration as an effective approach.</p>","PeriodicalId":87,"journal":{"name":"Materials Horizons","volume":" 21","pages":" 5419-5428"},"PeriodicalIF":10.7000,"publicationDate":"2024-08-13","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://pubs.rsc.org/en/content/articlepdf/2024/mh/d4mh00979g?page=search","citationCount":"0","resultStr":"{\"title\":\"Polyethylene glycol-decorated n-type conducting polymers with improved ion accessibility for high-performance organic electrochemical transistors†\",\"authors\":\"Haoran Tang, Yuanying Liang, Chi-Yuan Yang, Xi Luo, Jiangkai Yu, Kai Zhang, Simone Fabiano and Fei Huang\",\"doi\":\"10.1039/D4MH00979G\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >High-performance n-type organic mixed ionic-electronic conductors (OMIECs) are essential for advancing complementary circuits based on organic electrochemical transistors (OECTs). Despite significant progress, current n-type OMIECs often exhibit lower transconductance and slower response times compared to their p-type counterparts, limiting the development of OECT-based complementary circuits. Optimizing the conjugated backbone and side chain structures of OMIECs is critical for enhancing both ion and electron transport efficiencies while maintaining a delicate balance between the two. In this study, hydrophilic polyethylene glycol (PEG) side chains were incorporated into the highly conductive n-type polymer poly(3,7-dihydrobenzo[1,2-<em>b</em>:4,5-<em>b</em>′]difuran-2,6-dione) (PBFDO) backbone to achieve this goal. The incorporation of PEG chains improved ion accessibility, and by adjusting the PEG content, the electronic and ionic transport properties were fine-tuned, ultimately enhancing the performance of OECTs and related p–n complementary circuits. 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引用次数: 0
摘要
高性能 n 型有机混合离子电子导体(OMIEC)对于推进基于有机电化学晶体管(OECT)的互补电路至关重要。尽管取得了重大进展,但目前的 n 型 OMIEC 与 p 型 OMIEC 相比,通常具有较低的转导率和较慢的响应时间,从而限制了基于 OECT 的互补电路的发展。优化 OMIEC 的共轭骨架和侧链结构对于提高离子和电子传输效率,同时保持两者之间的微妙平衡至关重要。本研究将亲水性聚乙二醇(PEG)侧链加入到高导电性 n 型聚合物聚(3,7-二氢苯并[1,2-b:4,5-b']二呋喃-2,6-二酮)(PBFDO)骨架中,以实现这一目标。PEG 链的加入提高了离子的可及性,通过调整 PEG 含量,电子和离子传输特性得到了微调,最终提高了 OECTs 和相关 p-n 互补电路的性能。基于 PBFDO-PEG50wt% 的 n 型 OECTs 表现出卓越的传输特性,包括低至 72 μs 的瞬态响应时间(τON)、超过 400 S cm-1 的高几何归一化电导率以及超过 720 F cm-1 V-1 s-1 的惊人 μC* 值。值得注意的是,在互补逆变器中使用 PBFDO-PEG50wt% 后,电压增益达到了 20 V/V,比未改性 PBFDO 的电压增益高出五倍多(PBFDO-PEG50wt%)。
Polyethylene glycol-decorated n-type conducting polymers with improved ion accessibility for high-performance organic electrochemical transistors†
High-performance n-type organic mixed ionic-electronic conductors (OMIECs) are essential for advancing complementary circuits based on organic electrochemical transistors (OECTs). Despite significant progress, current n-type OMIECs often exhibit lower transconductance and slower response times compared to their p-type counterparts, limiting the development of OECT-based complementary circuits. Optimizing the conjugated backbone and side chain structures of OMIECs is critical for enhancing both ion and electron transport efficiencies while maintaining a delicate balance between the two. In this study, hydrophilic polyethylene glycol (PEG) side chains were incorporated into the highly conductive n-type polymer poly(3,7-dihydrobenzo[1,2-b:4,5-b′]difuran-2,6-dione) (PBFDO) backbone to achieve this goal. The incorporation of PEG chains improved ion accessibility, and by adjusting the PEG content, the electronic and ionic transport properties were fine-tuned, ultimately enhancing the performance of OECTs and related p–n complementary circuits. The n-type OECTs based on PBFDO-PEG50wt% demonstrated exceptional transfer characteristics, including a transient response time (τON) as low as 72 μs, a high geometry-normalized transconductance exceeding 400 S cm−1, and an impressive μC* value surpassing 720 F cm−1 V−1 s−1. Notably, the use of PBFDO-PEG50wt% in a complementary inverter resulted in a voltage gain of 20 V/V, more than five times higher than that achieved with unmodified PBFDO (<4 V/V). These findings highlight the importance of balancing electron and ion transport characteristics in OMIECs to achieve high performance in OECTs and their associated circuits, and they validate PEG decoration as an effective approach.