Center for Advanced Optoelectronic Functional Materials Research, and Key Lab of UV-Emitting Materials and Technology of Ministry of Education, Northeast Normal University, 5268 Renmin Street, Changchun, 130024, China.
Adv Sci (Weinh). 2022 May;9(13):e2105125. doi: 10.1002/advs.202105125. Epub 2022 Mar 8.
Biodegradable organic field-effect transistors (OFETs) have drawn tremendous attention for potential applications such as green electronic skins, degradable flexible displays, and novel implantable devices. However, it remains a huge challenge to simultaneously achieve high mobility, stable operation and controllable biodegradation of OFETs, because most of the widely used biodegradable insulating materials contain large amounts of hydrophilic groups. Herein, it is firstly proposed fungal-degradation ultraflexible OFETs based on the crosslinked dextran (C-dextran) as dielectric layer. The crosslinking strategy effectively eliminates polar hydrophilic groups and improves water and solvent resistance of dextran dielectric layer. The device with spin-coated 2,7-dioctyl[1]benzothieno[3,2-b][1]benzothiophene (C8-BTBT) semiconductor and C-dextran dielectric exhibits the highest mobility up to 7.72 cm V s , which is higher than all the reported degradable OFETs. Additionally, the device still maintains high performance regardless of in an environment humidity up to 80% or under the extreme bending radius of 0.0125 mm. After completion of their mission, the device can be controllably biodegraded by fungi without any adverse environmental effects, promoting the natural ecological cycles with the concepts of "From nature, for nature". This work opens up a new avenue for realizing high-performance biodegradable OFETs, and advances the process of the "green" electrical devices in practical applications.
可生物降解的有机场效应晶体管 (OFET) 因其在绿色电子皮肤、可降解柔性显示器和新型植入式设备等潜在应用方面的吸引力而受到极大关注。然而,要同时实现 OFET 的高迁移率、稳定运行和可控生物降解仍然是一个巨大的挑战,因为大多数广泛使用的可生物降解绝缘材料都含有大量的亲水基团。在此,首次提出了基于交联右旋糖酐 (C-dextran) 的真菌可降解超柔性 OFET。交联策略有效地消除了极性亲水基团,提高了右旋糖酐介电层的耐水和耐溶剂性。采用旋涂的 2,7-辛基[1]苯并噻吩[3,2-b][1]苯并噻吩 (C8-BTBT) 半导体和 C-dextran 介电层的器件表现出高达 7.72 cm V s 的最高迁移率,高于所有报道的可降解 OFET。此外,无论环境湿度高达 80%还是在极端弯曲半径为 0.0125 mm 的情况下,该器件仍能保持高性能。在完成任务后,器件可以被真菌可控地生物降解,而不会对环境造成任何不利影响,从而用“从自然,为自然”的理念促进自然生态循环。这项工作为实现高性能可生物降解 OFET 开辟了新途径,并推进了“绿色”电子设备在实际应用中的进程。