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分子量对梯形共轭聚合物有机电化学晶体管性能的影响

Influence of Molecular Weight on the Organic Electrochemical Transistor Performance of Ladder-Type Conjugated Polymers.

作者信息

Wu Han-Yan, Yang Chi-Yuan, Li Qifan, Kolhe Nagesh B, Strakosas Xenofon, Stoeckel Marc-Antoine, Wu Ziang, Jin Wenlong, Savvakis Marios, Kroon Renee, Tu Deyu, Woo Han Young, Berggren Magnus, Jenekhe Samson A, Fabiano Simone

机构信息

Laboratory of Organic Electronics, Department of Science and Technology, Linköping University, Norrköping, SE-60174, Sweden.

Wallenberg Wood Science Center, Department of Science and Technology, Linköping University, Norrköping, SE-60174, Sweden.

出版信息

Adv Mater. 2022 Jan;34(4):e2106235. doi: 10.1002/adma.202106235. Epub 2021 Dec 8.

Abstract

Organic electrochemical transistors (OECTs) hold promise for developing a variety of high-performance (bio-)electronic devices/circuits. While OECTs based on p-type semiconductors have achieved tremendous progress in recent years, n-type OECTs still suffer from low performance, hampering the development of power-efficient electronics. Here, it is demonstrated that fine-tuning the molecular weight of the rigid, ladder-type n-type polymer poly(benzimidazobenzophenanthroline) (BBL) by only one order of magnitude (from 4.9 to 51 kDa) enables the development of n-type OECTs with record-high geometry-normalized transconductance (g  ≈ 11 S cm ) and electron mobility × volumetric capacitance (µC* ≈ 26 F cm  V s ), fast temporal response (0.38 ms), and low threshold voltage (0.15 V). This enhancement in OECT performance is ascribed to a more efficient intermolecular charge transport in high-molecular-weight BBL than in the low-molecular-weight counterpart. OECT-based complementary inverters are also demonstrated with record-high voltage gains of up to 100 V V and ultralow power consumption down to 0.32 nW, depending on the supply voltage. These devices are among the best sub-1 V complementary inverters reported to date. These findings demonstrate the importance of molecular weight in optimizing the OECT performance of rigid organic mixed ionic-electronic conductors and open for a new generation of power-efficient organic (bio-)electronic devices.

摘要

有机电化学晶体管(OECTs)有望用于开发各种高性能的(生物)电子器件/电路。尽管近年来基于p型半导体的OECTs取得了巨大进展,但n型OECTs的性能仍然较低,这阻碍了高效能电子产品的发展。在此,研究表明,仅将刚性梯形n型聚合物聚(苯并咪唑并苯并菲咯啉)(BBL)的分子量微调一个数量级(从4.9 kDa调整到51 kDa),就能开发出具有创纪录高几何归一化跨导(g ≈ 11 S cm)、电子迁移率×体积电容(µC* ≈ 26 F cm² V⁻¹ s⁻¹)、快速时间响应(0.38 ms)和低阈值电压(0.15 V)的n型OECTs。OECT性能的这种提升归因于高分子量BBL中分子间电荷传输比低分子量的BBL更有效。基于OECT的互补反相器也得到了展示,其电压增益高达100 V/V,功耗低至0.32 nW,具体取决于电源电压。这些器件是迄今为止报道的最好的亚1 V互补反相器之一。这些发现证明了分子量在优化刚性有机混合离子-电子导体的OECT性能方面的重要性,并为新一代高效能有机(生物)电子器件开辟了道路。

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