启动时间为 250 μs 的直接数字 40 μA 100 kb/s 心内通信接收器,用于低占空比无引线起搏器同步

Adrian Ryser;Christof Baeriswyl;Michel Moser;Jürgen Burger;Tobias Reichlin;Thomas Niederhauser;Andreas Haeberlin
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引用次数: 0

摘要

首个商用双腔无铅起搏器(LLPM)最近推出。该系统将位于心脏右心房和右心室的两个独立植入物结合在一起。植入同步是通过心内传导性通信(CIC)实现的,以心肌和血液为传输通道。这种双腔LLPM的种植体同步成功已经得到证实。然而,持续活动的同步收发器消耗约800 nA,导致预计设备寿命减少25-45美元。本工作提出了一种基于收发器同步占空比和直接数字CIC (DD-CIC)的功率优化LLPM同步替代策略。在此基础上,提出了一种基于曼彻斯特编码数据、启动时间短的低功耗DD-CIC短包通信接收机。采用180nm CMOS工艺制作了该电路,并对其在高占空比下的灵敏度、电流消耗和启动时间进行了分析。在100 kb/s的数据速率下,接收器的灵敏度为81.6$\mathbf{\pm}$7.4 $\mu$V,有效电流消耗为39.1$\mathbf{\pm}$0.6 $\mu$ a,启动时间低于250 $\mathbf{\mu}$s。按照提议的LLPM同步策略指定的方式操作接收器,可将电流消耗降低到73 nA的测量平均值。综上所述,这项工作表明,基于sic的植入同步的同步占空比是一个很有前途的概念,可以大大减少当代双腔llpm的电流消耗。因此,器械的使用寿命可能会显著增加,潜在地降低了昂贵且容易发生并发症的再次干预的频率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Direct-Digital 40 $\mu$A 100 kb/s Intracardiac Communication Receiver With 250 $\mu$s Startup Time for Low Duty-Cycle Leadless Pacemaker Synchronization
The first commercial dual-chamber leadless pacemaker (LLPM) was introduced recently. The system combines two separate implants situated in the right atrium and the right ventricle of the heart. Implant synchronization is accomplished with conductive intracardiac communication (CIC) using the myocardium and blood as transmission channel. Successful implant synchronization of this dual-chamber LLPM has been demonstrated. However, the continuously active synchronization transceivers, consuming about 800 nA, cause a 25-45 $\mathbf{\%}$ reduction in the projected device longevity. This work proposes an alternative strategy for power-optimized LLPM synchronization, which is based on synchronous duty-cycling of the transceivers and direct-digital CIC (DD-CIC). In line with this strategy, a novel low-power DD-CIC receiver for short-packet communication based on Manchester-encoded data and with fast startup time is presented. The circuit was fabricated in 180 nm CMOS technology and analyzed with respect to sensitivity, current consumption and startup time under highly duty-cycled operation. The receiver achieves a sensitivity of 81.6 $\mathbf{\pm}$ 7.4 $\mu$ V at a data rate of 100 kb/s, with an active current consumption of 39.1 $\mathbf{\pm}$ 0.6 $\mu$ A and a startup time below 250 $\mathbf{\mu}$ s. Operating the receiver as specified by the proposed LLPM synchronization strategy reduces the current consumption to a measured average value of 73 nA. In conclusion, this work suggests synchronous duty-cycling for CIC-based implant synchronization as a promising concept to severely reduce the current consumption of contemporary dual-chamber LLPMs. Consequently, device longevity may be increased significantly, potentially reducing the frequency of costly and complication-prone re-interventions.
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