Quan Qimin, Burgess Ian B, Tang Sindy K Y, Floyd Daniel L, Loncar Marko
School of Engineering and Applied Science, Harvard University, Cambridge, MA 02138, USA.
Opt Express. 2011 Oct 24;19(22):22191-7. doi: 10.1364/OE.19.022191.
We present the design, fabrication and characterization of high-Q (Q=36,000) polymeric photonic crystal nanobeam cavities made of two polymers that have an ultra-low index contrast (ratio=1.15) and observed thermo-optical bistability at hundred microwatt power level. Due to the extended evanescent field and small mode volumes, polymeric nanobeam cavities are ideal platform for ultra-sensitive biochemical sensing. We demonstrate that these sensors have figures of merit (FOM=9190) two orders of magnitude greater than surface plasmon resonance based sensors, and outperform the commercial Biacore(TM) sensors. The demonstration of high-Q cavity in low-index-contrast polymers can open up versatile applications using a broad range of functional and flexible polymeric materials.
我们展示了由两种具有超低折射率对比度(比率 = 1.15)的聚合物制成的高 Q 值(Q = 36,000)聚合物光子晶体纳米束腔的设计、制造和表征,并在百微瓦功率水平下观察到热光双稳性。由于倏逝场扩展和模式体积小,聚合物纳米束腔是超灵敏生化传感的理想平台。我们证明,这些传感器的品质因数(FOM = 9190)比基于表面等离子体共振的传感器高两个数量级,并且优于商业 Biacore™ 传感器。在低折射率对比度聚合物中展示高 Q 腔可以开启使用各种功能多样且灵活的聚合物材料的广泛应用。