Integrated In-Plane Nanofluidic Devices for Resistive-Pulse Sensing

IF 5.9 2区 化学 Q1 CHEMISTRY, ANALYTICAL Annual Review of Analytical Chemistry Pub Date : 2024-04-12 DOI:10.1146/annurev-anchem-061622-030223
Tanner W. Young, Michael P. Kappler, Ethan D. Call, Quintin J. Brown, Stephen C. Jacobson
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Abstract

Single-entity (or digital) measurements enhance sensitivity (10- to 100-fold improvement) and uncover heterogeneity within a population (one event in 100 to 10,000). Many biological systems are significantly influenced by rare or infrequent events, and determining what species is present, in what quantity, and role of that species is critically important to unraveling many questions. To develop these measurement systems, resistive-pulse sensing is used as a label-free, single-particle detection technique and can be combined with a range of functional elements, e.g., mixers, reactors, filters, separators, and pores. Virtually, any two-dimensional layout of the micro- and nanofluidic conduits can be envisioned, designed, and fabricated in the plane of the device. Multiple nanopores in series lead to higher-precision measurements of particle size, shape, and charge, and reactions coupled directly with the particle-size measurements improve temporal response. Moreover, other detection techniques, e.g., fluorescence, are highly compatible with the in-plane format. These integrated in-plane nanofluidic devices expand the toolbox of what is possible with single-entity measurements.
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用于电阻式脉冲传感的集成平面内纳米流体器件
单实体(或数字)测量可提高灵敏度(提高 10 到 100 倍),并揭示种群内的异质性(100 到 10,000 个事件中才有一个事件)。许多生物系统都会受到罕见或不常见事件的重大影响,因此确定存在哪些物种、数量多少以及该物种的作用对于解开许多问题至关重要。为了开发这些测量系统,电阻脉冲传感技术被用作一种无标记的单粒子检测技术,并可与一系列功能元件(如混合器、反应器、过滤器、分离器和孔隙)相结合。实际上,微流体和纳米流体导管的任何二维布局都可以在设备的平面上进行设想、设计和制造。多个纳米孔串联可实现更高精度的粒度、形状和电荷测量,与粒度测量直接耦合的反应可改善时间响应。此外,荧光等其他检测技术也与平面内格式高度兼容。这些集成的面内纳米流体设备扩展了单实体测量的工具箱。
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来源期刊
Annual Review of Analytical Chemistry
Annual Review of Analytical Chemistry CHEMISTRY, ANALYTICAL-SPECTROSCOPY
CiteScore
14.80
自引率
1.20%
发文量
15
期刊介绍: The Annual Review of Analytical Chemistry, launched in 2008, offers a comprehensive perspective on the field, drawing from diverse disciplines such as biology, physics, and engineering, with analytical chemistry as the central theme. The journal's current volume has transitioned from gated to open access through Annual Reviews' Subscribe to Open program, with all articles published under a CC BY license.
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