电阻抗
纳米技术
对偶(语法数字)
电极
材料科学
炸薯条
体积热力学
催化作用
沙门氏菌
酶
光电子学
化学
物理
电气工程
细菌
生物化学
工程类
生物
物理化学
艺术
文学类
量子力学
遗传学
作者
Yue Li,Xinyue Ma,Wenyue Zhu,Qiao Huang,Yameng Liu,Jinming Pan,Yibin Ying,Xiahong Xu,Yingchun Fu
出处
期刊:Small
[Wiley]
日期:2023-04-25
卷期号:19 (35)
被引量:2
标识
DOI:10.1002/smll.202300900
摘要
Abstract Nanochannel‐based confinement effect is a fascinating signal transduction strategy for high‐performance sensing, but only size confinement is focused on while other confinement effects are unexplored. Here, a highly integrated nanochannel‐electrodes chip (INEC) is created and a size/volume‐dual‐confinement enzyme catalysis model for rapid and sensitive bacteria detection is developed. The INEC, by directly sandwiching a nanochannel chip (60 µm in thickness) in nanoporous gold layers, creates a micro‐droplet‐based confinement electrochemical cell (CEC). The size confinement of nanochannel promotes the urease catalysis efficiency to generate more ions, while the volume confinement of CEC significantly enriches ions by restricting diffusion. As a result, the INEC‐based dual‐confinement effects benefit a synergetic enhancement of the catalytic signal. A 11‐times ion‐strength‐based impedance response is obtained within just 1 min when compared to the relevant open system. Combining this novel nanoconfinement effects with nanofiltration of INEC, a separation/signal amplification‐integrated sensing strategy is further developed for Salmonella typhimurium detection. The biosensor realizes facile, rapid (<20 min), and specific signal readout with a detection limit of 9 CFU mL −1 in culturing solution, superior to most reports. This work may create a new paradigm for studying nanoconfined processes and contribute a new signal transduction technique for trace analysis application.
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