论文标题
双波段应用的金属 - 二电 - 金属等离子天线中的键合和抗dy键模式
Bonding and antibonding modes in metal-dielectric-metal plasmonic antennas for dual-band applications
论文作者
论文摘要
支持等离子体偏振子(SPPS)的谐振光天线 - 与介质中的电磁场相连的电子激发 - 与感应,光伏和光发射器件等有关。由于SPP色散,固定几何形状的常规天线表现出狭窄的SPP共振,因此不能同时在两个不同的光谱带中运行。相比之下,这里证明,在金属磁盘中被纳米间隔隔开时,杂交抗抗抑制SPP模式停留在可见范围内,而粘结式的一个可以将其推向中红外范围。这样的SPP二聚体可以感觉到纳米级体积的两种材料,其指纹中心频率差异为5倍。此外,可以通过使用相位变化材料(VO2)作为间隔器来调节中三红体SPP共振。相变材料的介电常数通过在抗dy抗光学模式的频率下加热材料来控制。这些发现为一类新的光电设备打开了能够在线性态度中以显着不同频率范围运行的新型光电设备,并且具有相同的照明波的极化。
Resonant optical antennas supporting plasmon polaritons (SPPs) - collective excitations of electrons coupled to electromagnetic fields in a medium - are relevant to sensing, photovoltaics, and light-emitting devices, among others. Due to the SPP dispersion, a conventional antenna of fixed geometry, exhibiting a narrow SPP resonance, cannot simultaneously operate in two different spectral bands. In contrast, here it is demonstrated that in metallic disks, separated by a nanometric spacer, the hybridized antibonding SPP mode stays in the visible range, while the bonding one can be pushed down to the mid-infrared range. Such an SPP dimer can sense two materials of nanoscale volumes, whose fingerprint central frequencies differ by a factor of 5. Additionally, the mid-infrared SPP resonance can be tuned by employing a phase-change material (VO2) as a spacer. The dielectric constant of the phase-change material is controlled by heating the material at the frequency of the antibonding optical mode. These findings open the door to a new class of optoelectronic devices able to operate in significantly different frequency ranges in the linear regime, and with the same polarization of the illuminating wave.