Li Xian'e, Zhang Qilun, Chen Yongzhen, Liu Xianjie, Braun Slawomir, Fahlman Mats
Laboratory of Organic Electronics, Department of Science and Technology (ITN), Linköping University, Norrköping SE-60174, Sweden.
Wallenberg Wood Science Center, Department of Science and Technology (ITN), Linköping University, Norrköping SE-60174, Sweden.
ACS Appl Mater Interfaces. 2025 Jan 22;17(3):5153-5164. doi: 10.1021/acsami.4c13674. Epub 2025 Jan 8.
Here, the Fermi level () shifts of several donor and acceptor materials in different atmospheres are systematically studied by following the work function (WF) changes with Kelvin probe measurements, ultraviolet photoelectron spectroscopy, and near-ambient pressure X-ray photoelectron spectroscopy. Reversible shifts are found with the trend of higher WFs measured in ambient air and lower WFs measured in high vacuum compared to the WFs measured in ultrahigh vacuum. The shifts are energy level and morphology-dependent, and two mechanisms are proposed: (1) competition between p-doping induced by O and HO/O complexes and n-doping induced by HO; (2) polar HO molecules preferentially modifying the ionization energy of one of the frontier molecular orbitals over the other. The results provide a deep understanding of the role of the O and HO molecules in organic semiconductors, guiding the way toward air-stable organic electronic devices.
在此,通过采用开尔文探针测量、紫外光电子能谱和近常压X射线光电子能谱跟踪功函数(WF)变化,系统研究了几种施主和受主材料在不同气氛中的费米能级()移动。与在超高真空下测量的功函数相比,发现了可逆的移动,其趋势是在环境空气中测量的功函数较高,而在高真空下测量的功函数较低。费米能级移动与能级和形态有关,并提出了两种机制:(1)由O和HO/O络合物引起的p型掺杂与由HO引起的n型掺杂之间的竞争;(2)极性HO分子优先改变一个前沿分子轨道的电离能而非另一个。这些结果为深入理解O和HO分子在有机半导体中的作用提供了依据,为实现空气稳定的有机电子器件指明了方向。