Shi Linlin, Cui Yanxia, Gao Yupeng, Wang Wenyan, Zhang Ye, Zhu Furong, Hao Yuying
Key Lab of Advanced Transducers and Intelligent Control System of Ministry of Education, College of Physics and Optoelectronics, Taiyuan University of Technology, Taiyuan 030024, China.
Department of Physics and Institute of Advanced Materials, Hong Kong Baptist University, Kowloon 22100, Hong Kong, China.
Nanomaterials (Basel). 2018 Jun 27;8(7):473. doi: 10.3390/nano8070473.
In this paper, we demonstrate high performance ultrathin silver (Ag) transparent electrodes with a thin MoO₃ nucleation layer based on the thermal evaporation method. The MoO₃/Ag transparent electrodes fabricated at different deposition rates were compared systematically on aspects of the transmission spectrum, surface resistance, and surface morphology. Our study indicates that with the presence of the MoO₃ nucleation layer, an Ag film of only 7 nm thick can achieve percolation and the film is porous instead of forming isolated islands. In addition, the increase of the deposition rate can yield obvious improvement of the surface morphology of the Ag film. Specifically, with the help of a 1 nm thick MoO₃ nucleation layer, the Ag film of 9 nm thick realized under the deposition rate of 0.7 nm/s has a surface resistance of about 20 ohm/sq and an average transmittance in the visible light range reaching 74.22%. Such a high performance of transmittance is superior to the reported results in the literature, which inevitably suffer obvious drop in the long wavelength range. Next, we applied the ultrathin MoO₃/Ag transparent electrode in organic solar cells. The optimized semitransparent organic solar cell displays a power conversion efficiency of 2.76% and an average transmittance in the visible range of 38% when light is incident from the Ag electrode side.
在本文中,我们基于热蒸发法展示了具有薄MoO₃成核层的高性能超薄银(Ag)透明电极。系统地比较了以不同沉积速率制备的MoO₃/Ag透明电极在透射光谱、表面电阻和表面形貌方面的情况。我们的研究表明,在存在MoO₃成核层的情况下,仅7 nm厚的Ag膜就能实现渗流,且该膜是多孔的,而非形成孤立的岛状结构。此外,沉积速率的增加能使Ag膜的表面形貌得到明显改善。具体而言,在1 nm厚的MoO₃成核层的帮助下,在0.7 nm/s的沉积速率下制备的9 nm厚的Ag膜,其表面电阻约为20 ohm/sq,在可见光范围内的平均透过率达到74.22%。如此高的透过率性能优于文献中报道的结果,那些结果在长波长范围内不可避免地会出现明显下降。接下来,我们将超薄MoO₃/Ag透明电极应用于有机太阳能电池。当光从Ag电极一侧入射时,优化后的半透明有机太阳能电池的功率转换效率为2.76%,在可见光范围内的平均透过率为38%。