Huang Lingting, Zhou Yuyang, Hu Xiaoming, Yang Zhen
Strait Institute of Flexible Electronics (SIFE, Future Technologies), Fujian Key Laboratory of Flexible Electronics, Fujian Normal University and Strait Laboratory of Flexible Electronics (SLoFE), Fuzhou, 350117, China.
School of Materials Science and Engineering, East China Jiaotong University, Nanchang, 330013, China.
Small. 2025 Feb;21(5):e2409711. doi: 10.1002/smll.202409711. Epub 2024 Dec 16.
Electrochemical sensors are among the most promising technologies for biomarker research, with outstanding sensitivity, selectivity, and rapid response capabilities that make them important in medical diagnostics and prognosis. Recently, hydrogels have gained attention in the domain of electrochemical biosensors because of their superior biocompatibility, excellent adhesion, and ability to form conformal contact with diverse surfaces. These features provide distinct advantages, particularly in the advancement of wearable biosensors. This review examines the contemporary utilization of hydrogels in electrochemical sensing, explores strategies for optimization and prospective development trajectories, and highlights their distinctive advantages. The objective is to provide an exhaustive overview of the foundational principles of electrochemical sensing systems, analyze the compatibility of hydrogel properties with electrochemical methodologies, and propose potential healthcare applications to further illustrate their applicability. Despite significant advances in the development of hydrogel-based electrochemical biosensors, challenges persist, such as improving material fatigue resistance, interfacial adhesion, and maintaining balanced water content across various environments. Overall, hydrogels have immense potential in flexible biosensors and provide exciting opportunities. However, resolving the current obstacles will necessitate additional research and development efforts.
电化学传感器是生物标志物研究中最具前景的技术之一,具有出色的灵敏度、选择性和快速响应能力,使其在医学诊断和预后中具有重要意义。近年来,水凝胶因其卓越的生物相容性、出色的粘附性以及与各种表面形成贴合接触的能力,在电化学生物传感器领域受到关注。这些特性具有明显优势,特别是在可穿戴生物传感器的发展方面。本综述考察了水凝胶在电化学传感中的当代应用,探索优化策略和未来发展轨迹,并突出其独特优势。目的是全面概述电化学传感系统的基本原理,分析水凝胶特性与电化学方法的兼容性,并提出潜在的医疗保健应用以进一步说明其适用性。尽管基于水凝胶的电化学生物传感器取得了重大进展,但挑战依然存在,例如提高材料抗疲劳性、界面粘附性以及在各种环境中保持平衡的含水量。总体而言,水凝胶在柔性生物传感器中具有巨大潜力,并提供了令人兴奋的机会。然而,解决当前障碍需要更多的研发努力。