Advances and Challenges in Integrated Circuits for Electrochemical Sensing: Enabling Next-Generation Biomedical and Molecular Applications.

Qiuyang Lin, Sander Crols, Aurojyoti Das, Marcel Zevenbergen, Wim Sijbers, Nick Van Helleputte, Carolina Mora Lopez
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Abstract

This manuscript provides a comprehensive review of the design, implementation, and advancements in integrated circuits (ICs) for electrochemical sensing, with a focus on biomedical and molecular applications. It begins by discussing the fundamental principles of electrochemical sensing and core modalities, including potentiometry, amperometry, impedimetry, and ISFET-based sensing, highlighting their unique requirements and challenges. A detailed analysis of state-of-the-art readout circuit architectures is presented, emphasizing strategies for achieving high dynamic range (DR), low noise, and enhanced stability while minimizing leakage currents. Both resistive and capacitive transimpedance amplifiers (TIAs) and current conveyor (CC)-based circuits are examined, exploring critical trade-offs between speed, power consumption, and noise performance. This review also discusses emerging applications such as DNA sequencing and molecular sensing, covering both ISFET and nanopore-based approaches, to showcase recent advancements in high-throughput, high-speed, and low-power interface circuit designs. By highlighting the challenges of the readout-circuit miniaturization, integration, and scalability, as well as the current limitations in existing approaches, this review provides a comprehensive synthesis of advancements in high-performance electrochemical readout architectures and their potential to address the evolving demands of modern biomedical applications.

电化学传感集成电路的进展与挑战:实现下一代生物医学和分子应用。
该手稿提供了一个全面的审查,设计,实施,并在集成电路(ic)的电化学传感进步,重点是生物医学和分子应用。首先讨论了电化学传感的基本原理和核心模式,包括电位法、安培法、阻抗法和基于isfet的传感,突出了它们独特的要求和挑战。详细分析了最先进的读出电路架构,强调实现高动态范围(DR),低噪声和增强稳定性的策略,同时最大限度地减少泄漏电流。电阻和电容跨阻放大器(TIAs)和电流传送带(CC)为基础的电路进行了检查,探索速度,功耗和噪声性能之间的关键权衡。本文还讨论了诸如DNA测序和分子传感等新兴应用,涵盖了ISFET和基于纳米孔的方法,以展示高通量、高速和低功耗接口电路设计的最新进展。通过强调读出电路小型化、集成化和可扩展性的挑战,以及现有方法的局限性,本综述全面综合了高性能电化学读出架构的进展及其解决现代生物医学应用不断发展的需求的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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