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用于同时检测水性介质中多目标物的纸质光学传感器阵列综述

Paper-based optical sensor arrays for simultaneous detection of multi-targets in aqueous media: A review.

作者信息

Mohan Binduja, Sasaki Yui, Minami Tsuyoshi

机构信息

Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, Japan.

Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo, Japan; JST, PRESTO, 4-1-8 Honcho, Kawaguchi, Saitama, Japan.

出版信息

Anal Chim Acta. 2024 Jul 18;1313:342741. doi: 10.1016/j.aca.2024.342741. Epub 2024 May 17.

Abstract

Sensor arrays, which draw inspiration from the mammalian olfactory system, are fundamental concepts in high-throughput analysis based on pattern recognition. Although numerous optical sensor arrays for various targets in aqueous media have demonstrated their diverse applications in a wide range of research fields, practical device platforms for on-site analysis have not been satisfactorily established. The significant limitations of these sensor arrays lie in their solution-based platforms, which require stationary spectrophotometers to record the optical responses in chemical sensing. To address this, this review focuses on paper substrates as device components for solid-state sensor arrays. Paper-based sensor arrays (PSADs) embedded with multiple detection sites having cross-reactivity allow rapid and simultaneous chemical sensing using portable recording apparatuses and powerful data-processing techniques. The applicability of office printing technologies has promoted the realization of PSADs in real-world scenarios, including environmental monitoring, healthcare diagnostics, food safety, and other relevant fields. In this review, we discuss the methodologies of device fabrication and imaging analysis technologies for pattern recognition-driven chemical sensing in aqueous media.

摘要

传感器阵列借鉴了哺乳动物嗅觉系统的原理,是基于模式识别的高通量分析中的基本概念。尽管许多用于水介质中各种目标的光学传感器阵列已在广泛的研究领域展示了其多样的应用,但用于现场分析的实用设备平台尚未得到令人满意的建立。这些传感器阵列的重大局限性在于其基于溶液的平台,该平台需要固定的分光光度计来记录化学传感中的光学响应。为了解决这一问题,本综述重点关注纸基板作为固态传感器阵列的器件组件。嵌入具有交叉反应性的多个检测位点的纸基传感器阵列(PSAD),可使用便携式记录设备和强大的数据处理技术进行快速、同时的化学传感。办公打印技术的适用性推动了PSAD在实际场景中的实现,包括环境监测、医疗诊断、食品安全及其他相关领域。在本综述中,我们讨论了用于水介质中模式识别驱动的化学传感的器件制造方法和成像分析技术。

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