Nano-BioTechnology Group, Department of Biotechnology, Faculty of Bioscience Engineering , Ghent University , 9000 Ghent , Belgium.
Center for Hybrid Nanostructures (CHyN), Fachberich Physik , University of Hamburg , D-22761 Hamburg , Germany.
Langmuir. 2019 Jul 2;35(26):8574-8583. doi: 10.1021/acs.langmuir.8b04331. Epub 2019 Apr 23.
The importance of thermodynamics does not need to be emphasized. Indeed, elevated temperature processes govern not only industrial scale production but also self-assembly, chemical reaction, interaction between molecules, etc. Not surprisingly, biological processes typically take place at a specific temperature. Here, we look at possibilities to raise the localized temperature by a laser around noble-metal nanoparticles incorporated into shells of layer-by-layer polyelectrolyte microcapsules-freely suspended delivery vehicles in an aqueous solution, developed in the Department of Interfaces, Max Planck Institute of Colloids and Interfaces, headed by Helmuth Möhwald. Understanding the mechanisms of localized temperature rise is essential, that is why we analyze the influence of incident intensity, nanoparticle size, their distribution and aggregation state, as well as thermodynamics at the nanoscale. This leads us to scrutinize "global" (used for thermal encapsulation) versus "local" (used for release of encapsulated materials) temperature rise. Similar analysis is extended to planar polymeric coatings, the lipid membrane system of vesicles and cells, on which nanoparticles are adsorbed. Insights are provided into the mechanisms of physicochemical and biological effects, the nature of which has always been profoundly, interactively, and engagingly discussed in the Department of Interfaces. This analysis is combined with recent developments providing outlook and highlighting a broad range of emerging applications.
热力学的重要性不言而喻。事实上,升高温度的过程不仅控制着工业规模的生产,还控制着自组装、化学反应、分子间相互作用等过程。毫不奇怪,生物过程通常在特定温度下进行。在这里,我们研究了在由层状聚电解质微胶囊壳(自由悬浮在水溶液中的输送载体)包裹的贵金属纳米粒子周围通过激光提高局部温度的可能性,这些微胶囊由 Max Planck 胶体与界面研究所界面部门的 Helmuth Möhwald 领导的团队开发。了解局部升温的机制至关重要,这就是为什么我们要分析入射强度、纳米粒子尺寸、它们的分布和聚集状态以及纳米尺度上的热力学的影响。这使我们能够仔细研究“全局”(用于热封装)与“局部”(用于封装材料的释放)升温。类似的分析扩展到了平面聚合物涂层、囊泡和细胞的脂质膜系统,其中吸附了纳米粒子。我们深入了解了物理化学和生物效应的机制,这些效应的本质在界面部门一直受到深入、互动和引人入胜的讨论。这项分析结合了最近的发展,提供了展望,并强调了广泛的新兴应用。