论文标题
无光谱的集成光子遥控分子识别和传感
Spectrum-free integrated photonic remote molecular identification and sensing
论文作者
论文摘要
吸收光谱法广泛用于感应和天文学,以了解微观量表上的分子组成。然而,典型的分散光谱技术需要多通道检测,从根本上限制了与直接光度方法相比,检测到极弱信号的能力。我们报告了使用硅纳米波导谐振器来实现直接光谱分子检测,从而避免了分散光谱的采集。我们使用具有透射光谱匹配并与氰化氢氢的准周期振动吸收系匹配的传输光谱并交叉相关的透射光谱的硅环谐振器。我们表明,相关峰振幅与重叠环的共振和气线的数量成正比,并且该分子特异性是从单个检测通道中相关信号的相位获得的。我们的结果表明,片上相关光谱法受到其他光谱方法的信噪性惩罚的限制,从而可以检测到微弱的光谱特征。
Absorption spectroscopy is widely used in sensing and astronomy to understand molecular compositions on microscopic to cosmological scales. However, typical dispersive spectroscopic techniques require multichannel detection, fundamentally limiting the ability to detect extremely weak signals when compared to direct photometric methods. We report the realization of direct spectral molecular detection using a silicon nanophotonic waveguide resonator, obviating dispersive spectral acquisition. We use a thermally tunable silicon ring resonator with a transmission spectrum matched and cross-correlated to the quasi-periodic vibronic absorption lines of hydrogen cyanide. We show that the correlation peak amplitude is proportional to the number of overlapping ring resonances and gas lines, and that molecular specificity is obtained from the phase of the correlation signal in a single detection channel. Our results demonstrate on-chip correlation spectroscopy that is less restricted by the signal-to-noise penalty of other spectroscopic approaches, enabling the detection of faint spectral signatures.