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室温下通过等离子体增强单分子荧光对局部声振动的超灵敏检测。

Ultrasensitive detection of local acoustic vibrations at room temperature by plasmon-enhanced single-molecule fluorescence.

机构信息

Key Laboratory of Mesoscopic Chemistry of MOE, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing, 210023, China.

Huygens-Kamerlingh Onnes Laboratory, Leiden University, 2300 RA, Leiden, The Netherlands.

出版信息

Nat Commun. 2022 Jun 9;13(1):3330. doi: 10.1038/s41467-022-30955-8.

Abstract

Sensitive detection of local acoustic vibrations at the nanometer scale has promising potential applications involving miniaturized devices in many areas, such as geological exploration, military reconnaissance, and ultrasound imaging. However, sensitive detection of weak acoustic signals with high spatial resolution at room temperature has become a major challenge. Here, we report a nanometer-scale system for acoustic detection with a single molecule as a probe based on minute variations of its distance to the surface of a plasmonic gold nanorod. This system can extract the frequency and amplitude of acoustic vibrations with experimental and theoretical sensitivities of 10 pm Hz and 10 fm Hz, respectively. This approach provides a strategy for the optical detection of acoustic waves based on molecular spectroscopy without electromagnetic interference. Moreover, such a small nano-acoustic detector with 40-nm size can be employed to monitor acoustic vibrations or read out the quantum states of nanomechanical devices.

摘要

纳米级局部声振动的灵敏检测在许多领域涉及小型化设备方面具有广阔的应用前景,如地质勘探、军事侦察和超声成像。然而,在室温下实现对弱声信号的高空间分辨率灵敏检测已成为一个主要挑战。在这里,我们报道了一种基于等离子体金纳米棒表面距离微小变化的单分子作为探针的纳米级声学检测系统。该系统可以提取声振动的频率和幅度,实验和理论灵敏度分别为 10 pm Hz 和 10 fm Hz。该方法提供了一种基于分子光谱的、无电磁干扰的声波光学检测策略。此外,这种具有 40nm 尺寸的小型纳米声学探测器可用于监测声振动或读出纳米机械器件的量子态。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3fcc/9184529/8ebd3da855f2/41467_2022_30955_Fig1_HTML.jpg

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