Department of Physics and Center for Functional Materials, Wake Forest University, Winston Salem, NC, USA.
Department of Chemistry and Center for Applied Energy Research (CAER), University of Kentucky, Lexington, KY, USA.
Nat Commun. 2021 Apr 21;12(1):2352. doi: 10.1038/s41467-021-22683-2.
Solution processed organic field effect transistors can become ubiquitous in flexible optoelectronics. While progress in material and device design has been astonishing, low environmental and operational stabilities remain longstanding problems obstructing their immediate deployment in real world applications. Here, we introduce a strategy to identify the most probable and severe degradation pathways in organic transistors and then implement a method to eliminate the main sources of instabilities. Real time monitoring of the energetic distribution and transformation of electronic trap states during device operation, in conjunction with simulations, revealed the nature of traps responsible for performance degradation. With this information, we designed the most efficient encapsulation strategy for each device type, which resulted in fabrication of high performance, environmentally and operationally stable small molecule and polymeric transistors with consistent mobility and unparalleled threshold voltage shifts as low as 0.1 V under the application of high bias stress in air.
溶液处理的有机场效应晶体管在柔性光电子学中无处不在。虽然在材料和器件设计方面取得了惊人的进展,但低环境和操作稳定性仍然是长期存在的问题,阻碍了它们在实际应用中的直接部署。在这里,我们介绍了一种策略,可以识别有机晶体管中最可能和最严重的降解途径,然后实施一种方法来消除不稳定的主要来源。在器件操作过程中实时监测电子陷阱状态的能量分布和转化,结合模拟,揭示了导致性能退化的陷阱的性质。有了这些信息,我们为每种器件类型设计了最有效的封装策略,从而制造出高性能、环境和操作稳定的小分子和聚合物晶体管,其迁移率一致,在空气中施加高偏压应力时,阈值电压漂移低至 0.1V,无与伦比。