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arXiv · 2605.11660

Tracer-free Contactless Acoustic Microrheometry Quantifies Viscoelastic Spectrum of Phase-separated Condensates

Abstract

The rheology of phase-separated condensates plays a central role in applications spanning advanced materials design and cellular processes, yet quantitative characterization of their viscoelasticity remains challenging due to the limitations of existing microrheological methods that require tracer particles or mechanical contact. Here, we establish tracer-free and contactless acoustic microrheometry as a versatile platform for quantifying the frequency-dependent complex shear modulus of single microscale condensates over 0.01-10 Hz. Using spatiotemporally controlled acoustic radiation force generated within a micro-acoustic resonator, this method deforms condensates for creep-recovery and oscillatory viscoelastic measurements. Quantitative validation using dextran condensates in a polyethylene-glycol continuous phase successfully captures their size- and frequency-dependent mechanical responses, while application to nucleic-acid condensates reveals salt-dependent internal viscoelastic changes at single-condensate resolution. By enabling quantitative dissection of condensate mechanics without invasive probes, acoustic microrheometry provides a broadly applicable framework for investigating phase-separated condensates across materials science, soft matter physics, biology, and beyond.

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Kichitaro Nakajima, Taichi Yoshikawa, Yuta Suzuki, Shuta Nakatani, Kanta Adachi, Nobutomo Nakamura, Sanae Murayama, Hiroki Sakuta, Naoya Yangisawa, Nadia A. Erkamp, Tomas Sneideris, Mao Fukuyama, Masateru Taniguchi, Miho Yanagisawa, Hirotsugu Ogi, Tuomas P. J. Knowles. 2026-05-12. Tracer-free Contactless Acoustic Microrheometry Quantifies Viscoelastic Spectrum of Phase-separated Condensates. https://arxiv.org/abs/2605.11660

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