A Power-Efficient Envelope-Detector-Less Amplitude-Shift-Keying Forward Telemetry for Wirelessly Powered Biomedical Devices.

Hyun-Su Lee, Hyung-Min Lee
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Abstract

This paper proposes an envelope-detector-less (EDL) amplitude-shift-keying (ASK) forward telemetry (FT) demodulator for wireless power/data transfer (WPDT) systems. The EDL ASK FT demodulator can substitute bulky and power-hungry components, which are an envelope detector and an analog comparator in the conventional ASK FT demodulator, with a digital controller, reducing both power dissipation and chip area. The proposed demodulator shares the gate control signals of pass transistors, which are used in an ac-dc regulator for wireless power reception, to maintain a constant load voltage while efficiently demodulating the forward telemetry data. Also, a proposed digital cleaner in the EDL demodulator refines this control signal into a wide pulse without suffering from resonant frequency noise, while a synchronizer can align its frequency with the data rate and resonant frequency. The 0.25-μm CMOS prototype chip of the proposed power-path-less EDL ASK FT demodulator, equipped with the ac-dc regulator, demonstrates a significant 38.2% reduction in power dissipation compared to the conventional ASK FT demodulator. Moreover, the EDL ASK FT demodulator occupies only 0.023-mm2 silicon area and achieves a low bit error rate (BER) less than 10-4 while maintaining a regulated voltage of 4.5 V on the load.

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用于无线供电生物医学设备的高能效无包络探测器移幅键控前向遥测技术。
本文提出了一种用于无线功率/数据传输(WPDT)系统的无包络探测器(EDL)振幅偏移键控(ASK)前向遥测(FT)解调器。EDL ASK FT 解调器可以用数字控制器替代传统 ASK FT 解调器中的包络检测器和模拟比较器等体积庞大、功耗高的元件,从而减少功耗和芯片面积。拟议的解调器共享用于无线功率接收交流-直流稳压器的通路晶体管的栅极控制信号,以便在有效解调前向遥测数据的同时保持恒定的负载电压。此外,EDL 解调器中的数字清零器可将该控制信号细化为宽脉冲,而不会受到谐振频率噪声的影响,同时同步器可使其频率与数据速率和谐振频率保持一致。与传统的 ASK FT 解调器相比,配备交流-直流稳压器的无功率路径 EDL ASK FT 解调器 0.25μm CMOS 原型芯片的功耗大幅降低了 38.2%。此外,EDL ASK FT 解调器仅占 0.023 平方毫米的硅面积,误码率 (BER) 低于 10-4,同时负载上的稳压电压保持在 4.5 V。
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Table of Contents Erratum to “Design of an Extreme Low Cutoff Frequency Highpass Frontend for CMOS ISFET via Direct Tunneling Principle” IEEE Transactions on Biomedical Circuits and Systems Publication Information IEEE Circuits and Systems Society Information Guest Editorial: Ultralow-Power Technologies for Edge Computing in Human-Machine Interface Applications
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