Institute of Functional Nano and Soft Materials-FUNSOM and Jiangsu Key Laboratory for Carbon Based Functional Materials and Devices, Soochow University, Suzhou, Jiangsu 215123, People's Republic of China.
Nanotechnology. 2013 Sep 6;24(35):355201. doi: 10.1088/0957-4484/24/35/355201. Epub 2013 Aug 6.
Due to their extraordinary properties, single-crystalline organic nanowires (NWs) are important building blocks for future low-cost and efficient nano-optoelectronic devices. However, it remains a critical challenge to assemble organic NWs rationally in an orientation-, dimensionality- and location-controlled manner. Herein, we demonstrate a feasible method for aligned growth of single-crystalline copper phthalocyanine (CuPc) NW arrays with high density, large-area uniformity and perfect crossed alignment by using Au film as a template. The growth process was investigated in detail. The Au film was found to have a critical function in the aligned growth of NWs, but may only serve as the active site for NW nucleation because of the large surface energy, as well as direct the subsequent aligned growth. The as-prepared NWs were then transferred to construct single NW-based photoconductive devices, which demonstrated excellent photoresponse properties with robust stability and reproducibility; the device showed a high switching ratio of ∼180, a fast response speed of ∼100 ms and could stand continuous operation up to 2 h. Importantly, this strategy can be extended to other organic molecules for their synthesis of NW arrays, revealing great potential for use in the construction of large-scale high-performance functional nano-optoelectronic devices.
由于其独特的性质,单晶有机纳米线(NWs)是未来低成本、高效率的纳米光电设备的重要构建模块。然而,以定向、维度和位置可控的方式合理组装有机 NWs 仍然是一个关键挑战。在此,我们展示了一种使用 Au 薄膜作为模板,实现单晶铜酞菁(CuPc)NW 阵列高密度、大面积均匀性和完美交叉对准生长的可行方法。详细研究了生长过程。Au 薄膜在 NW 的定向生长中具有关键作用,但由于其表面能较大,以及对后续定向生长的直接影响,Au 薄膜可能仅作为 NW 成核的活性位点。然后将制备的 NW 转移到构建基于单 NW 的光电导器件中,该器件表现出优异的光电响应特性,具有稳健的稳定性和可重复性;该器件的开关比约为 180,响应速度快约 100ms,并且可以连续运行长达 2 小时。重要的是,该策略可以扩展到其他有机分子,用于合成 NW 阵列,这为构建大规模高性能功能纳米光电设备提供了巨大的潜力。