论文标题
固有的发光从等离子体纳米插座闪烁
Intrinsic Luminescence Blinking from Plasmonic Nanojunctions
论文作者
论文摘要
等离子体纳米结构由具有纳米间隙的相邻金属结构组成,可以支持局部等离子体共振,从而增强光质相互作用并在纳米级上集中电磁场。在这个制度中,系统的光学响应受散装,分子和原子尺度之间边界的动力学现象不足的理解。在这里,我们报告了来自光兴奋的金纳米插座的固有光发射中普遍存在的波动,我们将其归因于诺布金属内的域边界和量子构造的发射器的光诱导的形成。我们的数据表明,光激发载体和金色adatom-分子相互作用在触发发光闪烁中起关键作用。令人惊讶的是,金属的内部重组对等离子腔的拉曼信号和散射光谱没有可测量的影响。我们的发现表明,金属发光提供了研究等离子腔中原子波动的有价值的代理,并与其他光学和电气技术互补。
Plasmonic nanojunctions, consisting of adjacent metal structures with nanometre gaps, can support localised plasmon resonances that boost light matter interactions and concentrate electromagnetic fields at the nanoscale. In this regime, the optical response of the system is governed by poorly understood dynamical phenomena at the frontier between the bulk, molecular and atomic scales. Here, we report ubiquitous spectral fluctuations in the intrinsic light emission from photo-excited gold nanojunctions, which we attribute to the light-induced formation of domain boundaries and quantum-confined emitters inside the noble metal. Our data suggest that photoexcited carriers and gold adatom - molecule interactions play key roles in triggering luminescence blinking. Surprisingly, this internal restructuring of the metal has no measurable impact on the Raman signal and scattering spectrum of the plasmonic cavity. Our findings demonstrate that metal luminescence offers a valuable proxy to investigate atomic fluctuations in plasmonic cavities, complementary to other optical and electrical techniques.