Riqing Ding, Xiage Zhang, Yidan Luan, Meishan Peng, Wantao Chen, Sijing Wang, Shengyao Su, Shunyang Lu, Sang Young Jeong, Han Young Woo, Xugang Guo, Kui Feng, Zi-Hao Guo
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DTFMCN can be easily synthesized from commercially available starting materials via a simple one-step process. The DTFMCN-based D-A conjugated polymers, S-DTFMCN and B-DTFMCN, exhibit extremely low-lying lowest unoccupied molecular orbital (LUMO) energy levels and show typical n-type characteristics. OECT devices based on these polymers demonstrate ultra-low threshold voltages (6 mV and 40 mV) and high μC* values of 13.49 and 13.57 F cm-1 V-1 s-1, respectively. More importantly, these devices exhibit exceptionally high operational stability, the current retention rate after 168 minutes of operation is 96%, making them one of the most stable n-type OECT devices reported to date. 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引用次数: 0
摘要
给体-受体(D-A)共轭聚合物混合离子电子导体(PMIECs)由于其结构的多样性和前沿分子轨道能级的可调性,在有机电化学晶体管(OECTs)中得到了广泛的应用。然而,与p型材料相比,n型材料的发展速度较慢,限制了它们在先进技术应用中的潜力。在这项研究中,我们通过给体工程策略设计并合成了一种新的基于噻吩的给体构建块2,3-二(噻吩-2-基)富马腈(DTFMCN),用于D-A共轭n型pmiec。DTFMCN可以很容易地通过一个简单的一步合成从商业上可用的原料。基于dtfmcn的D-A共轭聚合物S-DTFMCN和B-DTFMCN表现出极低的最低未占据分子轨道(LUMO)能级和典型的n型特征。基于这些聚合物的OECT器件具有超低阈值电压(6 mV和40 mV)和高μC*值,分别为13.49和13.57 F cm-1 V-1 s-1。更重要的是,这些设备表现出极高的运行稳定性,在运行168分钟后的当前保留率为96%,使其成为迄今为止报道的最稳定的n型OECT设备之一。该研究强调了DTFMCN在提高n型OECT器件工作稳定性方面的有效性,为生物电子学的应用提供了广阔的前景。
Donor Engineering for High Performance n-Type OECT Materials with Exceptional Operational Stability.
Donor-acceptor (D-A) conjugated polymeric mixed ionic-electronic conductors (PMIECs) have been widely used in organic electrochemical transistors (OECTs) due to their structural diversity and the tunability of their frontier molecular orbital (FMO) energy levels. However, the slower development of n-type materials compared to p-type ones limits their potential in advanced technological applications. In this study, we design and synthesize a novel thiophene-based donor building block, 2,3-di(thiophen-2-yl)fumaronitrile (DTFMCN), for D-A conjugated n-type PMIECs through donor engineering strategies. DTFMCN can be easily synthesized from commercially available starting materials via a simple one-step process. The DTFMCN-based D-A conjugated polymers, S-DTFMCN and B-DTFMCN, exhibit extremely low-lying lowest unoccupied molecular orbital (LUMO) energy levels and show typical n-type characteristics. OECT devices based on these polymers demonstrate ultra-low threshold voltages (6 mV and 40 mV) and high μC* values of 13.49 and 13.57 F cm-1 V-1 s-1, respectively. More importantly, these devices exhibit exceptionally high operational stability, the current retention rate after 168 minutes of operation is 96%, making them one of the most stable n-type OECT devices reported to date. This study highlights the effectiveness of DTFMCN in improving the operational stability of n-type OECT devices, offering promising potential for applications in bioelectronics.