Zhao Mingjian, Li Laiqing, Liu Rui, Li Bin, Chen Rongsheng, Wu Zhaohui
IEEE Trans Biomed Circuits Syst. 2024 Dec;18(6):1371-1381. doi: 10.1109/TBCAS.2024.3396428. Epub 2024 Dec 9.
In this paper, a high gain amplifier with phase compensation loop is presented. A structure of parallel gate cross-coupled transistors to both ends of differential pair drain and source is designed to improves the load impedance, which obtains sufficient gain and further reduces power consumption. A novel capacitor bootstrap load circuit is proposed. The capacitor bootstrap topology is constructed by the drain source resistance of the transistor working in the cut-off region, where the gate source parasitic capacitor of the transistor is in parallel with the bootstrap capacitor rather than the existing series structure, thereby only a small bootstrap capacitor is required. By avoiding the use of large capacitors, chip area can be effectively reduced without compromising performance such as gain and bandwidth. The amplifier is fabricated using 10- µm n-type a-IGZO TFT technology. Measurement results show that the proposed amplifier achieves a voltage gain of 43.5 dB and a common mode rejection ratio of 61.2 dB while maintaining low power consumption. The amplifier also exhibits a -3 dB bandwidth covering 0.4∼2.1KHz, encompassing major bioelectric frequency bands. A real-time ECG signal was successfully captured using the fabricated TFT amplifier and gel electrodes. It has great potential in flexible sensing and acquisition applications such as electro cardiogram (ECG), electro encephalogram (EEG), pulse detection, and other wearable applications.
本文提出了一种带有相位补偿环路的高增益放大器。设计了一种在差分对漏极和源极两端采用并联栅极交叉耦合晶体管的结构,以提高负载阻抗,从而获得足够的增益并进一步降低功耗。提出了一种新颖的电容自举负载电路。电容自举拓扑由工作在截止区的晶体管的漏源电阻构成,其中晶体管的栅源寄生电容与自举电容并联,而非现有的串联结构,因此仅需一个小的自举电容。通过避免使用大电容,可在不影响增益和带宽等性能的情况下有效减小芯片面积。该放大器采用10-μm n型非晶硅铟镓锌氧化物薄膜晶体管(a-IGZO TFT)技术制造。测量结果表明,所提出的放大器在保持低功耗的同时,实现了43.5 dB的电压增益和61.2 dB的共模抑制比。该放大器还展现出覆盖0.4∼2.1KHz的-3 dB带宽,涵盖了主要的生物电频带。使用制造的薄膜晶体管放大器和凝胶电极成功采集到了实时心电图信号。它在诸如心电图(ECG)、脑电图(EEG)、脉搏检测等柔性传感与采集应用以及其他可穿戴应用中具有巨大潜力。