论文标题
单个银纳米线及其网络设备的等离子增强的光响应
Plasmon-Enhanced Photoresponse of a Single Silver Nanowire and its Networked Devices
论文作者
论文摘要
对于光电结构和设备,使用具有纳米级特征的金属电极,由于等离激元场增强引起的加热,光量效果至关重要。一个特殊的情况是单个银纳米线(AG NWS)及其网络。 AG NW-NETWORKS具有出色的热,电气和机械性能,为光电设备中使用的常见柔性透明电极材料提供了简单而可靠的替代方案。迄今为止,还没有关于Ag NW的光响应的报道。在这项工作中,我们表明,这种Ag NW的单个Ag NW和一个网络具有光化效应,具有重要的,内在的光响应,如使用扫描光电流显微镜观察到的,正如直接观察到的。在纳米线 - 金属结构上产生的接触金属或等离子的表面等离子体极化子(SPP)在可能会增强等离子体场场的交界处引起加热。 Ag NWS的局部加热会导致由于降压效应而导致阴性照射。在这里,由于NW-Metal接触连接处记录了由于等离子增强的Seebeck效应而引起的开路响应。通过用Ag纳米颗粒装饰Ag NWS,发现SPP辅助的降压效应可以进一步增强。这些观察结果与金属纳米线在等离子体应用中的使用,尤其是在光电剂中,一般而言。我们的发现可能铺平了在没有光谱检测的情况下启用血浆传感的路径。
Photo-bolometric effect is critically important in optoelectronic structures and devices employing metallic electrodes with nanoscale features due to heating caused by the plasmonic field enhancement. One peculiar case is individual silver nanowires (Ag NWs) and their networks. Ag NW-networks exhibit excellent thermal, electrical, and mechanical properties, providing a simple yet reliable alternative to common flexible transparent electrode materials used in optoelectronic devices. To date there have been no reports on the photoresponse of Ag NWs. In this work, we show that a single Ag NW and a network of such Ag NWs possess a significant, intrinsic photoresponse thanks to the photo-bolometric effect, as directly observed and measured using scanning photocurrent microscopy. Surface plasmon polaritons (SPP) created at the contact metals or plasmons created at the nanowire-metal structures cause heating at the junctions where a plasmonic field enhancement is possible. The local heating of the Ag NWs results in negative photoconductance due to the bolometric effect. Here an open-circuit response due to the plasmon-enhanced Seebeck effect was recorded at the NW-metal contact junctions. The SPP-assisted bolometric effect is found to be further enhanced by decorating the Ag NWs with Ag nanoparticles. These observations are relevant to the use of metallic nanowires in plasmonic applications in particular and in optoelectronics in general. Our findings may pave the path for plasmonics enabled sensing without a spectroscopic detection.