Remote electrodes spaced from a conforming interface create a focused electric field that selectively modulates the vagus nerve while minimizing pain.
A tuned time-varying magnetic field generator delivers specific electromagnetic parameters to stimulate mammalian cells.
A deformable conducting medium conforms to body contours to focus stimulation on the vagus nerve while minimizing phrenic nerve activation and pain.
Non-invasive vagus nerve stimulation modulates neural activity using electromagnetic fields to treat neurodevelopmental disorders.
Ferromagnetic components modify magnetic fields to increase brain stimulation depth while reducing cranial nerve side effects.
A self-adhesive medical system integrates planar electrodes and electromagnetic coils to deliver microcurrents and magnetic fields directly to the skin.
Injectable electric field concentrators paired with an external magnetic coil enable targeted neural stimulation without overheating.
Non-invasive magnetic and electrical vagus nerve stimulation modulates neural signals to improve gastric motility while avoiding surgical risks.
Dual inductor branches adjust frequency and current direction to resolve flexibility versus complexity trade-offs in medical magnetic field devices.
Integrated cameras and contact sensors in the TMS coil provide visual confirmation of placement, reducing reliance on complex external neuronavigation systems.
Periodic pulsed stimulation reduces power consumption while a low-pass filter removes high-frequency components to minimize patient discomfort.
Pneumatic lifting and locking mechanisms adjust the support position to resolve mobility stability contradictions.
Acoustic waves stimulate vagus nerve fibers to reduce acetylcholine release, resolving bronchial constriction without surgical implantation risks.