化学
钝化
联轴节(管道)
寡核苷酸
纳米技术
原位
调制(音乐)
化学物理
电化学
拉曼光谱
分子结合
工作(物理)
位阻效应
DNA
分子
动能
纳米尺度
纳米颗粒
泄漏(经济)
荧光
动力学
聚合物
分子动力学
信号(编程语言)
组合化学
大规模运输
质谱法
铟
耦合强度
曲面(拓扑)
微流控
作者
Zhenglian Li,Yingjie Zhang,Haihui Wang,Ge Gao,Haoyue Lv,Biwu Liu,Yongxi Zhao
摘要
Diffusion-reaction coupling at solid-liquid interfaces has long constrained the performance of interfacial molecular assays, particularly surface-based DNA assays. Herein, we report an ice-confinement strategy that reprograms the mass transport at the solid-liquid interface. Through in situ electrochemistry and finite-element modeling, we reveal that directional freezing concentrates DNA oligonucleotides within a thin interfacial liquid layer, effectively shifting the reaction from diffusion-controlled to surface-confined regime. Moreover, with rationally designed probes, we demonstrate that ice confinement lowers interfacial energy barriers and can kinetically trap overequilibrium binding states, improving access to sterically hindered sites and structured targets. Furthermore, integrating PEGylated passivation expands the effective electrical double layer and, together with freezing, affords ultrasensitive miRNA detection to 100 aM within 30 min while suppressing amplification leakage and preserving labile RNA. Importantly, our strategy applies to different substrates (gold and glass) and multimodal signal outputs (fluorescence, Raman spectroscopy, and electrochemistry). Overall, our work establishes a kinetic modulation strategy via phase-transition-enabled physical confinement, with significant implications for biosensing, surface engineering, and molecular diagnostics.
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