Interdisciplinary Laboratories for Advanced Materials Physics (I-LAMP), Università Cattolica del Sacro Cuore, 25121, Brescia, Italy.
Dipartimento di Matematica e Fisica, Università Cattolica del Sacro Cuore, 25121, Brescia, Italy.
Sci Rep. 2020 Oct 1;10(1):16230. doi: 10.1038/s41598-020-72534-1.
The thermo-mechanical properties of streptavidin-conjugated gold nanospheres, adhered to a surface via complex molecular chains, are investigated by two-color infrared asynchronous optical sampling pump-probe spectroscopy. Nanospheres with different surface densities have been deposited and exposed to a plasma treatment to modify their polymer binding chains. The aim is to monitor their optical response in complex chemical environments that may be experienced in, e.g., photothermal therapy or drug delivery applications. By applying unsupervised learning techniques to the spectroscopic traces, we identify their thermo-mechanical response variation. This variation discriminates nanospheres in different chemical environments or different surface densities. Such discrimination is not evident based on a standard analysis of the spectroscopic traces. This kind of analysis is important, given the widespread application of conjugated gold nanospheres in medicine and biology.
通过双色红外非同步光采样泵浦探测光谱学研究了通过复杂分子链附着在表面上的链霉亲和素结合的金纳米球的热机械性能。已经沉积了具有不同表面密度的纳米球,并对其进行了等离子体处理以修饰其聚合物结合链。目的是监测它们在复杂化学环境中的光学响应,例如在光热治疗或药物输送应用中可能遇到的环境。通过将无监督学习技术应用于光谱迹线,我们确定了它们的热机械响应变化。这种变化可以区分不同化学环境或不同表面密度的纳米球。这种区分在基于光谱迹线的标准分析中并不明显。鉴于共轭金纳米球在医学和生物学中的广泛应用,这种分析很重要。