| Literature DB >> 24678126 |
Hyung-Min Lee1, Hangue Park1, Maysam Ghovanloo1.
Abstract
A power-efficient wireless stimulating system for a head-mounted deep brain stimulator (DBS) is presented. A new adaptive rectifier generates a variable DC supply voltage from a constant AC power carrier utilizing phase control feedback, while achieving high AC-DC power conversion efficiency (PCE) through active synchronous switching. A current-controlled stimulator adopts closed-loop supply control to automatically adjust the stimulation compliance voltage by detecting stimulation site potentials through a voltage readout channel, and improve the stimulation efficiency. The stimulator also utilizes closed-loop active charge balancing to maintain the residual charge at each site within a safe limit, while receiving the stimulation parameters wirelessly from the amplitude-shift-keyed power carrier. A 4-ch wireless stimulating system prototype was fabricated in a 0.5-μm 3M2P standard CMOS process, occupying 2.25 mm². With 5 V peak AC input at 2 MHz, the adaptive rectifier provides an adjustable DC output between 2.5 V and 4.6 V at 2.8 mA loading, resulting in measured PCE of 72 ~ 87%. The adaptive supply control increases the stimulation efficiency up to 30% higher than a fixed supply voltage to 58 ~ 68%. The prototype wireless stimulating system was verified in vitro.Entities:
Keywords: Active charge balancing; adaptive rectifier; closed-loop supply control; head-mounted deep brain stimulation; implantable medical devices; inductive power transfer
Year: 2013 PMID: 24678126 PMCID: PMC3964183 DOI: 10.1109/JSSC.2013.2266862
Source DB: PubMed Journal: IEEE J Solid-State Circuits ISSN: 0018-9200 Impact factor: 5.013