生物传感器
纳米技术
介电谱
纳米线
表面工程
硼酸
氧化铟锡
微流控
材料科学
化学
表面改性
纳米尺度
检出限
生物电子学
粘附
合理设计
蚀刻(微加工)
纳米颗粒
纳米传感器
氧化锡
纳米结构
硫化地杆菌
生物分子
胶体金
荧光
作者
Nitish Kumar,Lester U. Vinzons,Wei-Yau Shia,P. Chu,Yu‐Te Liao,Chia‐Wei Liu,Shu‐Ping Lin
标识
DOI:10.1016/j.bios.2025.118112
摘要
Rapid, sensitive, and specific detection of bacterial pathogens is vital for ensuring public health and food safety. This study presents a rationally engineered nanostructured biosensor composed of boronic acid (BA)-functionalized indium tin oxide vertical nanowires (ITO-VNWs) for electrochemical impedance spectroscopy (EIS)-based bacterial detection. Optimizing nanowire geometry through controlled KOH etching and tailoring surface chemistry with BA modification enhanced bacterial adhesion and enabled electrical signal transduction through cis -diol–mediated boronate ester bond formation. Extended Derjaguin–Landau–Verwey–Overbeek (XDLVO) analysis confirmed improved surface–bacteria interactions, showing reduced energy barriers and stronger adhesion forces on BA-ITO-VNWs. The biosensors exhibited a broad dynamic detection range (10 1 –10 7 CFU mL -1 ), rapid response within 9 min, and high specificity for Escherichia coli over Staphylococcus aureus , attributed to the abundant cis -diols on Gram-negative bacterial surfaces. Detection in spiked milk and juice samples correlated closely with results from commercial viability assays, and integration with a portable EIS chip enabled miniaturized, field-deployable diagnostics. This work highlights how nanoscale surface engineering coupled with XDLVO-based interfacial interaction modeling guides biosensor optimization, offering a versatile strategy for real-time, label-free discrimination of Gram-negative bacteria.
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