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首页> 外文期刊>IEEE transactions on biomedical circuits and systems >A mm-Sized Free-Floating Wirelessly Powered Implantable Optical Stimulation Device
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A mm-Sized Free-Floating Wirelessly Powered Implantable Optical Stimulation Device

机译:毫米尺寸的自由漂浮式无线植入式光刺激仪

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This paper presents a mm-sized, free-floating, wirelessly powered, implantable optical stimulation (FF-WIOS) device for untethered optogenetic neuromodulation. A resonator-based three-coil inductive link creates a homogeneous magnetic field that continuously delivers sufficient power (>2.7 mW) at an optimal carrier frequency of 60 MHz to the FF-WIOS in the near field without surpassing the specific absorption rate limit, regardless of the position of the FF-WIOS in a large brain area. Forward data telemetry carries stimulation parameters by on-off-keying the power carrier at a data rate of 50 kb/s to selectively activate a 4 x 4 mu LED array. Load-shift-keying back telemetry controls the wireless power transmission by reporting the FF-WIOS received power level in a closed-loop power control mechanism. LEDs typically require high instantaneous power to emit sufficient light for optical stimulation. Thus, a switched-capacitor-based stimulation architecture is used as an energy storage buffer with one off-chip capacitor to receive charge directly from the inductive link and deliver it to the selected mu LED at the onset of stimulation. The FF-WIOS system-on-a-chip prototype, fabricated in a 0.35-mu m standard CMOS process, charges a 10-mu F capacitor up to 5 V with 37% efficiency and passes instantaneous current spikes up to 10 mA in the selected mu LED, creating a bright exponentially decaying flash with minimal wasted power. An in vivo experiment was conducted to verify the efficacy of the FF-WIOS by observing light-evoked local field potentials and immunostained tissue response from the primary visual cortex (V1) of two anesthetized rats.
机译:本文提出了一种毫米大小的,自由浮动的,无线供电的,植入式光刺激(FF-WIOS)设备,用于不受束缚的光遗传神经调节。基于谐振器的三线圈感应链路会产生均匀的磁场,该磁场会以最佳的60 MHz载波频率向近场的FF-WIOS连续提供足够的功率(> 2.7 mW),而不会超过特定的吸收速率限制FF-WIOS在大脑区域中的位置。前向数据遥测通过以50 kb / s的数据速率开/关电源来承载刺激参数,以选择性地激活4 x 4μsLED阵列。负载移位键控遥测技术通过在闭环功率控制机制中报告FF-WIOS接收到的功率水平来控制无线电力传输。 LED通常需要高的瞬时功率来发射足够的光用于光学刺激。因此,基于开关电容器的刺激架构被用作具有一个片外电容器的能量存储缓冲器,以直接从感应链路接收电荷,并在刺激开始时将其传送到选定的mu LED。 FF-WIOS片上系统原型采用0.35微米标准CMOS工艺制造,可为10微米F电容器充电至5 V,效率为37%,并通过高达10 mA的瞬时电流尖峰。选定的mu LED,以最小的功耗创建明亮的指数衰减闪光灯。进行了一项体内实验,通过观察两只麻醉大鼠的初级视觉皮层(V1)的光诱发局部场电位和免疫染色的组织反应来验证FF-WIOS的功效。

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