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Hyun-Mun Kim

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Open access Jul 2026

Neural dynamics of temporal interference stimulation monitoring by soft liquid metal interfaces across neural systems

Neuromodulation is widely employed to enhance neural activity and restore impaired circuitry, yet current methods suffer from invasiveness, limited depth, or poor spatial resolution. Temporal interference stimulation (TIS) has emerged as a non-invasive approach to modulate deep brain regions via interference of high-frequency electric fields, achieving spatial selectivity. Despite its potential, the physiological effects remain unexplored. Here, we present a customized liquid metal-based neural interface to record electrophysiological responses to TIS across diverse neural tissues, from brain organoids to mouse brains. The softness of the interface minimizes invasiveness while ensuring stable access to deep neural regions. Electrophysiological analyses reveal TIS-induced dynamics in neurodevelopment and functional connectivity. Furthermore, we investigated latent neural dynamics, presenting population-level neural activity, to compare responses across models of differing complexity and maturity. By combining soft neural interfaces with multi-scale analyses, this study uncovers how neuromodulation shapes neural dynamics and supports the development of future therapeutic strategies. Temporal interference stimulation enables non-invasive deep brain modulation, but its physiological effects remain unclear. Here, the authors developed a soft liquid metal neural interface to investigate TIS across brain organoids and mouse brains, revealing changes in neural dynamics

Enji Kim, Wonjung Park, Yeon-Mi Hong et al. · 0 citations

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