Specto Photonics, Via Giulio e Corrado Venini 18, 20127, Milano, Italy.
CNR-Istituto di Fotonica e Nanotecnologie, CNR-IFN, Piazza Leonardo da Vinci 32, 20133, Milano, Italy.
Nat Commun. 2024 Jun 19;15(1):5202. doi: 10.1038/s41467-024-49419-2.
Acoustic vibrations of matter convey fundamental viscoelastic information that can be optically retrieved by hyperfine spectral analysis of the inelastic Brillouin scattered light. Increasing evidence of the central role of the viscoelastic properties in biological processes has stimulated the rise of non-contact Brillouin microscopy, yet this method faces challenges in turbid samples due to overwhelming elastic background light. Here, we introduce a common-path Birefringence-Induced Phase Delay (BIPD) filter to disentangle the polarization states of the Brillouin and Rayleigh signals, enabling the rejection of the background light using a polarizer. We demonstrate a 65 dB extinction ratio in a single optical pass collecting Brillouin spectra in extremely scattering environments and across highly reflective interfaces. We further employ the BIPD filter to image bone tissues from a mouse model of osteopetrosis, highlighting altered biomechanical properties compared to the healthy control. Results herald new opportunities in mechanobiology where turbid biological samples remain poorly characterized.
物质的声学振动传递着基本的粘弹性信息,这些信息可以通过对非弹性布里渊散射光的精细光谱分析来光学获取。越来越多的证据表明粘弹性性质在生物过程中起着核心作用,这激发了非接触式布里渊显微镜的兴起,但由于弹性背景光的压倒性存在,该方法在混浊样本中面临挑战。在这里,我们引入了一种共光路双折射诱导相移(BIPD)滤波器,以解缠布里渊和瑞利信号的偏振态,从而使用偏振器来抑制背景光。我们在单个光学通过中实现了 65dB 的消光比,在极度散射的环境中收集布里渊光谱,并在高反射界面上进行。我们进一步利用 BIPD 滤波器对骨质疏松症小鼠模型的骨骼组织进行成像,与健康对照组相比,突出了生物力学特性的改变。这些结果预示着在机械生物学方面的新机遇,因为混浊的生物样本仍然难以得到充分的描述。