Department of Materials Science and Engineering and Division of Advanced Materials Science, Pohang University of Science and Technology, Pohang, 790-784, Korea.
Nanoscale. 2012 Nov 7;4(21):6831-4. doi: 10.1039/c2nr32228e. Epub 2012 Sep 27.
Although the performance of transparent conducting oxides based on bixbyite In(2)O(3) (Sn doped In(2)O(3): ITO) and wurtzite ZnO (Al, In, and Ga doped ZnO) is sufficient in conventional optoelectronic devices, their flexibility remains insufficient for demands in mobile and foldable electronics generation. A lot of alternative materials such as metallic nanowires and carbon based nano-structures have been tried for transparent flexible electrodes, but poor thermal stability of metal nanowires and limits in conductivity of carbon based nano-structures are still waiting for permanent solutions. Here, we show that the cross-linked ITO nano-branches have superior mechanical flexibility compared to ITO bulk film without any cracks even with a bending radius of 0.1 cm. Moreover, for equivalent sheet resistivity, the ITO nano-branches exhibit optical transmittance comparable to that of commercial metallic nanowires (such as Ag and Cu in the visible spectrum) but show far superior thermal stability in conductivity without any degradation even at a temperature of 200 °C and a humidity of 90%.
虽然基于尖晶石结构的 In(2)O(3)(掺 Sn 的 In(2)O(3):ITO)和纤锌矿结构 ZnO(掺 Al、In 和 Ga 的 ZnO)的透明导电氧化物在传统光电设备中的性能已经足够,但它们的柔韧性仍不能满足移动和可折叠电子产品的需求。为了透明柔性电极,人们尝试了很多替代材料,如金属纳米线和基于碳的纳米结构,但金属纳米线的热稳定性差和基于碳的纳米结构的导电性有限等问题仍然需要得到永久性的解决。在这里,我们展示了交联的 ITO 纳米分支具有比 ITO 体膜更好的机械柔韧性,即使在弯曲半径为 0.1cm 的情况下也没有出现任何裂纹。此外,对于等效方阻,ITO 纳米分支的透光率可与商业金属纳米线(如在可见光范围内的 Ag 和 Cu)相媲美,但在导电性方面具有远优于后者的热稳定性,即使在 200°C 和 90%湿度的条件下也没有任何退化。