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Enhanced heat diffusion in nanofluid via DNA mediated aggregation

机译:通过DNA介导的聚集在纳米流体中增强热扩散

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In this work, we have investigated the role of the type of DNA in the heat diffusion mechanism of single stranded DNA as well as double stranded DNA mixed with differently shaped green synthesized gold nanoparticle prepared via green synthesis route. We demonstrate that, irrespective of nanoparticle shape, heat diffusion, characterized by the effective thermal diffusivity value evaluated using a laser based dual beam thermal lens technique, increases not only with the concentration of nanoparticles but also with the addition of single stranded DNA. The addition of double stranded DNA found to be ineffective in causing any kind of change in the thermal diffusivity value for various concentrations of nanoparticles as well as DNA. The transmission electron microscopy image analysis of the mixture elucidates that single stranded DNA causing nanoparticle aggregation provides easy path of heat transport whereas no aggregation of gold nanoparticles are observed in the presence of double stranded DNA. Amongst the differently shaped (star, bean and spherical) nanoparticles of size ~20 nm considered here, star shaped particles are found to aggregate more efficiently and result in maximum enhancement of the thermal diffusivity value, followed by bean and spherical shape. These results are further corroborated with the studies of thermal diffusivity evaluation of mixtures comprising of citrate stabilized negatively charged gold nanoparticle (~5 nm)–DNA molecules. The UV-Vis absorption studies carried on the mixture also indicate the preferential aggregation of nanoparticles in the presence of single stranded DNA, as manifested as red shift in the plasmonic peak. An increase in the nanoparticle concentration as well as single stranded DNA concentration in the mixture indicates that the maximum enhancement occurs for the star shaped gold nanoparticles. The understanding of heat diffusion through DNA–gold nanoparticle may facilitate the development of biocompatible coolants or heat exchanges, DNA mediated assembly of nanoparticles etc.
机译:在这项工作中,我们研究了DNA的作用在单链DNA的热扩散机制中的作用,以及通过绿色合成途径制备的不同形状的绿色合成金纳米粒子混合的双链DNA。我们证明,与纳米颗粒形状无关,其特征在于使用基于激光的双束热透镜技术评估的有效热扩散值的热扩散,不仅增加了纳米颗粒的浓度,而且还增加了加入单链DNA。添加双链DNA对于导致各种浓度的纳米颗粒以及DNA的热扩散率值的任何类型的变化是无效的。混合物的透射电子显微镜图像分析阐明了引起纳米颗粒聚集的单链DNA提供了容易的热量路径,而在双链DNA存在下未观察到金纳米颗粒的聚集。在此考虑的尺寸〜20nm的不同形状(星,豆和球形)纳米颗粒中,发现星状颗粒更有效地聚集并导致热扩散值的最大增强,然后是豆和球形。这些结果与包含柠檬酸盐稳定的带负电荷的金纳米粒子(〜5nM)-DNA分子的混合物的热扩散性评价的研究进一步证实。在混合物上携带的UV-Vis吸收研究还表明在单链DNA存在下纳米颗粒的优先聚集,如血浆峰的红色移位。混合物中纳米颗粒浓度以及单链DNA浓度的增加表明星形金纳米颗粒发生最大增强。通过DNA-金纳米粒子的热扩散的理解可以促进生物相容性冷却剂或热交换器的发育,DNA介导的纳米颗粒组装等。

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