State Key Laboratory of Digital Medical Engineering, School of Biomedical Engineering, Hainan University, Haikou 570228, China.
Key Laboratory of Biomedical Engineering of Hainan Province, One Health Institute, Hainan University, Haikou 570228, China.
Biosensors (Basel). 2024 Jun 28;14(7):323. doi: 10.3390/bios14070323.
Each application of neurostimulators requires unique stimulation parameter specifications to achieve effective stimulation. Balancing the current magnitude with stimulation resolution, waveform, size, and channel count is challenging, leading to a loss of generalizability across broad neural interfaces. To address this, this paper proposes a highly scalable, programmable neurostimulator with a System-on-Chip (SOC) capable of 32 channels of independent stimulation. The compliance voltage reaches up to ±22.5 V. A pair of 8-bit current-mode DACs support independent waveforms for source and sink operations and feature a user-selectable dual range for low-current intraparenchymal microstimulation with a resolution of 4.31 μA/bit, as well as high current stimulation for spinal cord and DBS applications with a resolution of 48.00 μA/bit, achieving a wide stimulation range of 12.24 mA while maintaining high-resolution biological stimulation. A dedicated communication protocol enables full programmable control of stimulation waveforms, effectively improving the range of stimulation parameters. In vivo electrophysiological experiments successfully validate the functionality of the proposed stimulator. This flexible stimulator architecture aims to enhance its generality across a wide range of neural interfaces and will provide more diverse and refined stimulation strategies.
每个神经刺激器的应用都需要独特的刺激参数规格来实现有效的刺激。平衡电流幅度与刺激分辨率、波形、大小和通道数是具有挑战性的,导致在广泛的神经接口中失去通用性。为了解决这个问题,本文提出了一种具有可扩展、可编程的片上系统 (SoC) 的神经刺激器,能够实现 32 个独立刺激通道。其顺应电压高达 ±22.5V。一对 8 位电流模式 DAC 支持源和汇操作的独立波形,并具有用户可选的双量程,用于低电流脑内微刺激,分辨率为 4.31μA/位,以及用于脊髓和 DBS 应用的高电流刺激,分辨率为 48.00μA/位,实现了 12.24mA 的宽刺激范围,同时保持了高分辨率的生物刺激。专用通信协议可实现对刺激波形的完全可编程控制,有效改善了刺激参数范围。体内电生理实验成功验证了所提出的刺激器的功能。这种灵活的刺激器架构旨在增强其在广泛的神经接口中的通用性,并将提供更多样化和精细化的刺激策略。