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首页> 外文期刊>Journal of Physics. Condensed Matter >Utilizing ultrathin DNA/poly-lysine multilayer films to create liquid/liquid interfaces: spectroscopic characterization, interfacial reactions and nanoparticle adsorption
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Utilizing ultrathin DNA/poly-lysine multilayer films to create liquid/liquid interfaces: spectroscopic characterization, interfacial reactions and nanoparticle adsorption

机译:利用超薄DNA /聚赖氨酸多层膜创建液/液界面:光谱表征,界面反应和纳米颗粒吸附

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摘要

Alternating electrostatic multilayer adsorption of poly-L-lysine (pLys) and DNA is used to create well-defined biopolymer multilayers for use as an ultrathin aqueous phase in liquid-liquid interfacial measurements. The molecular structure and thickness of the polyelectrolyte multilayers are determined using a combination of polarization modulation FT-IR reflection-absorption spectroscopy (PM-FTIRRAS) and FT-surface plasmon resonance (FT-SPR) thickness measurements. Electroactive species such as ferri/ferrocyanide ions can be incorporated into the DNA/pLys polyelectrolyte multilayers. The ion transport activity of these electroactive films when in contact with 1,2-dichoroethane is verified by electrochemical measurements. Micron-sized patterns of these multilayers are created by either photopatterning, vapour-deposited spot patterning or microfluidic stencil processing, and are used in conjunction with fluorescence and surface plasmon resonance imaging (SPRI) to monitor (i) the intercalation of dye molecules into DNA/pLys ultrathin films, (ii) the electrostatic adsorption of gold nanoparticles onto DNA/pLys multilayers and (iii) the spatially controlled incorporation and reaction of enzymes into patterned biopolymer multilayers.
机译:聚-L-赖氨酸(pLys)和DNA的交替静电多层吸附可用于创建定义明确的生物聚合物多层,以用作液-液界面测量中的超薄水相。聚电解质多层膜的分子结构和厚度是使用偏振调制FT-IR反射吸收光谱(PM-FTIRRAS)和FT表面等离振子共振(FT-SPR)厚度测量方法确定的。可以将诸如亚铁/亚铁氰化物离子的电活性物质掺入DNA / pLys聚电解质多层中。当与1,2-二氯乙烷接触时,这些电活性膜的离子迁移活性通过电化学测量得到证实。这些多层的微米级图案是通过光图案化,气相沉积斑点图案化或微流体模板加工制成的,并与荧光和表面等离振子共振成像(SPRI)结合使用以监控(i)染料分子嵌入DNA中/ pLys超薄膜,(ii)将金纳米颗粒静电吸附到DNA / pLys多层膜上,和(iii)在空间上控制酶向图案化生物聚合物多层膜中的掺入和反应。

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