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Large-scale parallelization of nanomechanical mass spectrometry with weakly-coupled resonators

机译:纳米力学质谱与弱耦合谐振器的大规模并行化

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Nanomechanical mass spectrometry is a recent technological breakthrough that enables the real-time analysis of single molecules. In contraposition to its extreme mass sensitivity is a limited capture cross-section that can hinder measurements in a practical setting. Here we show that weak-coupling between devices in resonator arrays can be used in nanomechanical mass spectrometry to parallelize the measurement. This coupling gives rise to asymmetric amplitude peaks in the vibrational response of a single nanomechanical resonator of the array, which coincide with the natural frequencies of all other resonators in the same array. A rigorous theoretical model is derived that explains the physical mechanisms and describes the practical features of this parallelization. We demonstrate the significance of this parallelization through inertial imaging of analytes adsorbed to all resonators of an array, with the possibility of simultaneously detecting resonators placed at distances a hundred times larger than their own physical size.
机译:纳米机械质谱是最近的技术突破,使单分子的实时分析能够进行实时分析。在其极端质量敏感性的情况下,其极度敏感性是一个有限的捕获横截面,可以在实际设置中妨碍测量。在这里,我们表明谐振器阵列中的装置之间的弱耦合可以用于纳米力学质谱法,以并行化测量。该耦合在阵列的单个纳米机械谐振器的振动响应中产生了不对称幅度峰值,这与相同阵列中的所有其他谐振器的自然频率相一致。推导出一种严格的理论模型,其解释了物理机制并描述了这种并行化的实际特征。我们通过对阵列的所有谐振器的分析物的惯性成像证明了这种并行化的重要性,其可以同时检测放置在距离大于其自身物理尺寸的距离处的谐振器。

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