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Scholarly Works


A Methodological Protocol and Considerations for Transcranial Ultrasonic Stimulation in Exploratory Clinical Human Studies.

Journal article J Vis Exp · December 12, 2025 Transcranial ultrasonic stimulation (TUS) is emerging as a non-invasive neuromodulatory technique capable of delivering millimeter-precision stimulation at whole-brain depths. Research efforts have increasingly focused on its translational potential. Promi ... Full text Link to item Cite

Low intensity focused ultrasound stimulation in stroke: A phase I safety & feasibility trial.

Journal article Brain Stimul · 2025 OBJECTIVE: We aimed to determine the maximum safe spatial-peak pulse-average intensity (ISPPA) of low-intensity focused ultrasound stimulation (LIFUS) in stroke patients and explore its effect on motor learning and corticospinal excitability. METHODS: We a ... Full text Link to item Cite

Motor network reorganization associated with rTMS-induced writing improvement in writer's cramp dystonia.

Journal article Brain Stimul · 2025 BACKGROUND: Writer's cramp (WC) dystonia is an involuntary movement disorder with distributed abnormalities in the brain's motor network. Prior studies established the potential for repetitive transcranial magnetic stimulation (rTMS) to either premotor cor ... Full text Link to item Cite

Flexible Ultrasonic Transducers for Wearable Biomedical Applications: A Review on Advanced Materials, Structural Designs, and Future Prospects.

Journal article IEEE Trans Ultrason Ferroelectr Freq Control · July 2024 Due to the rapid developments in materials science and fabrication techniques, wearable devices have recently received increased attention for biomedical applications, particularly in medical ultrasound (US) imaging, sensing, and therapy. US is ubiquitous ... Full text Open Access Link to item Cite

TAP: targeting and analysis pipeline for optimization and verification of coil placement in transcranial magnetic stimulation.

Journal article J Neural Eng · April 21, 2022 Objective.Transcranial magnetic stimulation (TMS) can modulate brain function via an electric field (E-field) induced in a brain region of interest (ROI). The ROI E-field can be computationally maximized and set to match a specific reference using individu ... Full text Open Access Link to item Cite