Tang Kai Wing Kevin, Jeong Jinmo, Hsieh Ju-Chun, Yao Mengmeng, Ding Hong, Wang Wenliang, Liu Xiangping, Pyatnitskiy Ilya, He Weilong, Moscoso-Barrera William D, Lozano Anakaren Romero, Artman Brinkley, Huh Heeyong, Wilson Preston S, Wang Huiliang
Department of Biomedical Engineering, Cockrell School of Engineering, The University of Texas at Austin, Austin, TX, USA.
Department of Aerospace Engineering and Engineering Mechanics, Cockrell School of Engineering, The University of Texas at Austin, Austin, TX, USA.
Nat Commun. 2025 May 28;16(1):4940. doi: 10.1038/s41467-025-60181-x.
Transcranial focused ultrasound is a promising non-invasive method for neuromodulation, particularly for neurodegenerative and psychiatric conditions. However, its use in wearable systems has been limited due to bulky devices and reliance on ultrasound gel, which dehydrates and lacks stable adhesion for long-term use. Here, we present a miniaturized wearable ultrasound device, comparable in size to standard electrophysiological electrodes, integrated with a bioadhesive hydrogel for stable, long-term somatosensory cortical stimulation. Our air-cavity Fresnel lens based self-focusing acoustic transducer was fabricated via a lithography-free microfabrication process, achieving 30.7 W/cm² (1.92 MPa) acoustic intensity and 10 mm focal depth. The hydrogel couplant exhibited less than 13% acoustic attenuation and maintained a stable adhesion force of 0.961 N/cm for 35 days. Using this system, we successfully suppressed somatosensory evoked potentials elicited by functional electrical stimulation over 28 days, demonstrating the device's potential for long-term, wearable neuromodulation applications.
经颅聚焦超声是一种很有前景的神经调节非侵入性方法,尤其适用于神经退行性疾病和精神疾病。然而,由于设备体积庞大且依赖超声凝胶,而超声凝胶会脱水且缺乏长期使用的稳定附着力,其在可穿戴系统中的应用一直受到限制。在此,我们展示了一种小型化的可穿戴超声设备,其尺寸与标准电生理电极相当,并集成了一种生物粘附水凝胶,用于稳定、长期的体感皮层刺激。我们基于气腔菲涅耳透镜的自聚焦声换能器是通过无光刻微制造工艺制造的,实现了30.7W/cm²(1.92MPa)的声强和10mm的焦深。水凝胶耦合剂的声衰减小于13%,并在35天内保持0.961N/cm的稳定附着力。使用该系统,我们在28天内成功抑制了功能性电刺激诱发的体感诱发电位,证明了该设备在长期可穿戴神经调节应用中的潜力。