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A low-noise low-power front-end amplifier for neural-recording applications

机译:用于神经记录应用的低噪声低功率前端放大器

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Monitoring the electrical activities of a large number of neurons in vertebrates' central nervous system in vivo through hundreds of parallel channels without interferring in their natural functions is a neuroscientist's interest. Value of this information in both scientific and clinical contexts, especially in expansion of braincomputer interfaces, is extremely significant. Therefore, low-noise amplifiers are needed with filtering capability on the front end to amplify the desired signals and eliminate direct current baseline shifts. Hence, size and power consumption need to be minimized to reduce trauma and heat dissipation, which can result in tissue damage for human applications and the system needs to be implantable and wireless. The practical solution for developing such systems is system-on-a-chip, based on ultra-low-power mixed-mode and wideband RFIC designs. They, however, impose a number of challenges that may require nontraditional solutions. In this paper, we present a fully differential low-power low-noise preamplifier suitable for recording biological signals, from a few mHz up to 10 kHz. This amplifier has a bandpass filter that is tunable between 10 mHz and 10 kHz, and has been designed and simulated in a standard 90-nm CMOS process. The circuit consumes 10 μW from a 1.2 V supply and provides a gain of 40 dB and an output swing of ±0.5 V with a total harmonic distortion of less than 0.5%. The total input-referred noise level is 4.6 μV integrating the noise over 0.01 Hz to 10 kHz.
机译:通过数百个并行通道在体内监视脊椎动物中枢神经系统中大量神经元的电活动,而不会干扰其自然功能,这是神经科学家的兴趣所在。在科学和临床环境中,尤其是在扩展脑机接口方面,此信息的价值极为重要。因此,需要在前端具有滤波功能的低噪声放大器,以放大所需信号并消除直流基线偏移。因此,需要最小化尺寸和功耗以减少创伤和散热,这可能会导致对人体的组织损伤,并且系统需要是可植入的和无线的。开发此类系统的实际解决方案是基于超低功耗混合模式和宽带RFIC设计的片上系统。但是,它们提出了许多挑战,可能需要非传统的解决方案。在本文中,我们提出了一种全差分低功率低噪声前置放大器,适用于记录从几mHz到10 kHz的生物信号。该放大器具有可在10 mHz和10 kHz之间调节的带通滤波器,并已通过标准90 nm CMOS工艺进行设计和仿真。该电路从1.2 V电源消耗10μW功率,增益为40 dB,输出摆幅为±0.5 V,总谐波失真小于0.5%。总的输入参考噪声电平为4.6μV,其中包括0.01 Hz至10 kHz的噪声。

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