Department of Chemical and Materials Engineering, University of Alberta, Edmonton AB T6G 2R3, Canada.
Nano Lett. 2015 Aug 12;15(8):5658-63. doi: 10.1021/acs.nanolett.5b02557. Epub 2015 Jul 31.
Mid-infrared (IR) photothermal spectroscopy of adsorbed molecules is an ideal technique for molecular recognition in miniature sensors with very small thermal mass. Here, we report on combining the photothermal spectroscopy with electrical resonance of a semiconductor nanowire for enhanced sensitivity, selectivity, and simplified readout. Wide band gap semiconductor bismuth ferrite nanowire, by virtue of its very low thermal mass and abundance of surface states in the band gap, facilitates thermally induced charge carrier trapping in the surface states, which affects its electrical resonance response. Electrical resonance response of the nanowire varies significantly depending on the photothermal spectrum of the adsorbed molecules. We demonstrate highly selective detection of mid-IR photothermal spectral signatures of femtogram level molecules physisorbed on a nanowire by monitoring internal dissipation response at its electrical resonance.
吸附分子的中红外(IR)光热光谱学是一种在具有非常小热质量的微型传感器中进行分子识别的理想技术。在这里,我们报告了将光热光谱学与半导体纳米线的电共振相结合,以提高灵敏度、选择性和简化读出。宽带隙半导体铋铁氧体纳米线由于其非常低的热质量和带隙中丰富的表面态,有利于热诱导载流子在表面态中的俘获,这会影响其电共振响应。纳米线的电共振响应会根据吸附分子的中红外光热光谱发生显著变化。我们通过监测其电共振时的内部耗散响应,证明了对吸附在纳米线上的飞克级分子的中红外光热光谱特征进行了高选择性检测。