...
首页> 外文期刊>Advanced Materials >Large-Area Direct Laser-Shock Imprinting of a 3D Biomimic Hierarchical Metal Surface for Triboelectric Nanogenerators
【24h】

Large-Area Direct Laser-Shock Imprinting of a 3D Biomimic Hierarchical Metal Surface for Triboelectric Nanogenerators

机译:摩擦电纳米发电机的3D仿生分层金属表面的大面积直接激光冲击压印

获取原文
获取原文并翻译 | 示例

摘要

Ongoing efforts in triboelectric nanogenerators (TENGs) focus on enhancing power generation, but obstacles concerning the economical and cost-effective production of TENGs continue to prevail. Micro-anostructure engineering of polymer surfaces has been dominantly utilized for boosting the contact triboelectrification, with deposited metal electrodes for collecting the scavenged energy. Nevertheless, this state-of-the-art approach is limited by the vague potential for producing 3D hierarchical surface structures with conformable coverage of high-quality metal. Laser-shock imprinting (LSI) is emerging as a potentially scalable approach for directly surface patterning of a wide range of metals with 3D nanoscale structures by design, benefiting from the ultrahigh-strain-rate forming process. Here, a TENG device is demonstrated with LSI-processed biomimetic hierarchically structured metal electrodes for efficient harvesting of water-drop energy in the environment. Mimicking and transferring hierarchical microstructures from natural templates, such as leaves, into these water-TENG devices is effective regarding repelling water drops from the device surface, since surface hydrophobicity from these biomicrostructures maximizes the TENG output. Among various leaves' microstructures, hierarchical microstructures from dried bamboo leaves are preferable regarding maximizing power output, which is attributed to their unique structures, containing both dense nanostructures and microscale features, compared with other types of leaves. Also, the triboelectric output is significantly improved by closely mimicking the hydrophobic nature of the leaves in the LSI-processed metal surface after functionalizing it with low-surface-energy self-assembled-monolayers. The approach opens doors to new manufacturable TENG technologies for economically feasible and ecologically friendly production of functional devices with directly patterned 3D biomimic metallic surfaces in energy, electronics, and sensor applications.
机译:摩擦电纳米发电机(TENGs)的正在进行的努力集中在增强发电上,但是关于经济有效地生产TENGs的障碍仍然盛行。聚合物表面的微/纳米结构工程已被主要用于促进接触摩擦起电,沉积的金属电极用于收集清除的能量。尽管如此,这种先进的方法仍受制于产生具有合格金属覆盖范围的3D分层表面结构的模糊潜力。借助超高应变速率成型工艺,激光冲击压印(LSI)成为一种潜在的可扩展方法,可通过设计直接对具有3D纳米级结构的多种金属进行表面图案化。在此,将对TENG器件进行LSI处理,该仿生器件具有经过LSI处理的仿生层级结构金属电极,可有效收集环境中的水滴能量。从自然模板(例如树叶)模仿并转移分层的微结构到这些水-TENG设备中,对于排斥设备表面的水滴非常有效,因为来自这些生物微结构的表面疏水性可最大化TENG的输出。在各种叶片的微结构中,考虑到最大功率输出,干燥竹叶的分级微结构是优选的,这归因于其独特的结构,与其他类型的叶片相比,它既包含致密的纳米结构,又具有微米尺度的特征。此外,通过用低表面能自组装单层功能化LSI处理后的金属表面中的叶子,使其在疏水处理中的疏水性接近,从而显着提高了摩擦电输出。该方法为在能源,电子和传感器应用中直接图案化3D仿生金属表面的功能性设备的经济可行和生态友好的生产提供了新的可制造TENG技术的大门。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号