Merkl Padryk, Zhou Shuzhi, Zaganiaris Apostolos, Shahata Mariam, Eleftheraki Athina, Thersleff Thomas, Sotiriou Georgios A
Department of Microbiology, Tumor and Cell Biology, Karolinska Institutet, Stockholm SE-17177, Sweden.
Department of Materials and Environmental Chemistry, Stockholm University, Stockholm 10691, Sweden.
ACS Appl Nano Mater. 2021 May 28;4(5):5330-5339. doi: 10.1021/acsanm.1c00668. Epub 2021 May 5.
Plasmonic nanoparticles with near-IR (NIR) light absorption are highly attractive in biomedicine for minimally invasive photothermal treatments. However, these optical properties are typically exhibited by plasmonic nanostructures with complex, nonspherical geometries that may prohibit their broad commercialization and further integration into photothermal devices. Herein, we present the single-step aerosol self-assembly of plasmonic nanoaggregates that consisted of spherical silver nanoparticles with tunable extinction from visible to NIR wavelengths. This tunable extinction was achieved by the addition of SiO during the flame synthesis of the nanoparticles, which acted as a dielectric spacer between the spherical silver nanoparticles and was also computationally validated by simulating the extinction spectra of similar silver nanoaggregates. These plasmonic nanoaggregates were easily deposited on silicone polymeric surfaces and further encased with a top polymer layer, forming plasmonic photothermal nanocomposite films. The photothermal properties of the NIR nanocomposite films were utilized to eradicate the established biofilms of clinically relevant and with a relationship observed between the final surface temperature and biofilm eradication.
具有近红外(NIR)光吸收特性的等离子体纳米颗粒在生物医学中对于微创光热治疗极具吸引力。然而,这些光学特性通常由具有复杂、非球形几何形状的等离子体纳米结构表现出来,这可能会阻碍它们的广泛商业化以及进一步集成到光热装置中。在此,我们展示了等离子体纳米聚集体的单步气溶胶自组装,该聚集体由具有从可见光到近红外波长可调消光特性的球形银纳米颗粒组成。这种可调消光通过在纳米颗粒的火焰合成过程中添加SiO来实现,SiO充当球形银纳米颗粒之间的介电间隔层,并且通过模拟类似银纳米聚集体的消光谱在计算上得到了验证。这些等离子体纳米聚集体很容易沉积在硅聚合物表面,并进一步用顶层聚合物层包裹,形成等离子体光热纳米复合薄膜。利用近红外纳米复合薄膜的光热特性根除了临床相关的已形成生物膜,并且观察到最终表面温度与生物膜根除之间存在关联。