Kim Mi-Jeong, Jeong Hee Jin
Nano Hybrid Technology Research Center, Korea Electrotechnology Research Institute (KERI), Changwon 51543, Republic of Korea.
Department of Electro-Functionality Material Engineering, University of Science and Technology (UST), Changwon 51543, Republic of Korea.
Nanomaterials (Basel). 2024 Sep 6;14(17):1454. doi: 10.3390/nano14171454.
The hybridization of single-walled carbon nanotubes (SWCNTs) and Cu nanoparticles offers a promising strategy for creating highly conductive and mechanically stable fillers for flexible printed electronics. In this study, we report the ultrafast synthesis of SWCNT/Cu hybrid nanostructures and the fabrication of flexible electrodes under ambient conditions through a laser-induced photo-thermal reaction. Thermal energy generated from the nonradiative relaxation of the π-plasmon resonance of SWCNTs was utilized to reduce the Cu-complex (known as a metal-organic decomposition ink) into Cu nanoparticles. We systematically investigated the effects of SWCNT concentration and output laser power on the structural and electrical properties of the SWCNT/Cu hybrid electrodes. The SWCNT/Cu electrodes achieved a minimum electrical resistivity of 46 μohm·cm, comparable to that of the metal-based printed electrodes. Mechanical bending tests demonstrated that the SWCNT/Cu electrodes were highly stable and durable, with no significant deformation observed even after 1000 bending cycles. Additionally, the electrodes showed rapid temperature increases and stable Joule heating performance, reaching temperatures of nearly 80 °C at an applied voltage of less than 3.5 V.
单壁碳纳米管(SWCNTs)与铜纳米颗粒的杂化提供了一种很有前景的策略,用于为柔性印刷电子器件制造高导电性和机械稳定性的填料。在本研究中,我们报道了SWCNT/Cu混合纳米结构的超快合成以及在环境条件下通过激光诱导光热反应制造柔性电极。利用SWCNTs的π等离子体共振的非辐射弛豫产生的热能将铜络合物(称为金属有机分解油墨)还原为铜纳米颗粒。我们系统地研究了SWCNT浓度和输出激光功率对SWCNT/Cu混合电极的结构和电学性能的影响。SWCNT/Cu电极的最低电阻率达到46 μΩ·cm,与金属基印刷电极相当。机械弯曲测试表明,SWCNT/Cu电极高度稳定且耐用,即使在1000次弯曲循环后也未观察到明显变形。此外,电极显示出快速的温度升高和稳定的焦耳热性能,在施加电压小于3.5 V时温度接近80°C。