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Janus 纳米射流作为一种高效的非对称光热源。

Janus-Nanojet as an efficient asymmetric photothermal source.

机构信息

Group of Optics, Department of Applied Physics, University of Cantabria, 39005, Santander, Spain.

Department of Chemistry, Molecular Sciences Research Hub, Imperial College London, London, W12 0BZ, UK.

出版信息

Sci Rep. 2022 Aug 20;12(1):14222. doi: 10.1038/s41598-022-17630-0.

Abstract

The combination of materials with radically different physical properties in the same nanostructure gives rise to the so-called Janus effects, allowing phenomena of a contrasting nature to occur in the same architecture. Interesting advantages can be taken from a thermal Janus effect for photoinduced hyperthermia cancer therapies. Such therapies have limitations associated to the heating control in terms of temperature stability and energy management. Single-material plasmonic nanoheaters have been widely used for cancer therapies, however, they are highly homogeneous sources that heat the surrounding biological medium isotropically, thus equally affecting cancerous and healthy cells. Here, we propose a prototype of a Janus-Nanojet heating unit based on toroidal shaped plasmonic nanoparticles able to efficiently generate and release local heat directionally under typical unpolarized illumination. Based on thermoplasmonic numerical calculations, we demonstrate that these Janus-based nanoheaters possess superior photothermal conversion features (up to [Formula: see text] K) and unique directional heating capacity, being able to channel up over 90% of the total thermal energy onto a target. We discuss the relevance of these innovative nanoheaters in thermoplasmonics, and hyperthermia cancer therapies, which motivate the development of fabrication techniques for nanomaterials.

摘要

将具有截然不同物理性质的材料组合在同一纳米结构中会产生所谓的“双面效应”,从而使同一结构中发生性质截然不同的现象。对于光热诱导癌症治疗的热双面效应,可以利用其带来有趣的优势。这种治疗方法存在与加热控制相关的局限性,表现在温度稳定性和能量管理方面。单材料等离子体纳米加热器已广泛应用于癌症治疗,但它们是高度均匀的热源,会各向同性地加热周围的生物介质,从而同样影响癌细胞和健康细胞。在这里,我们提出了一种基于环形等离子体纳米粒子的双面纳米射流加热单元原型,它能够在典型的非偏振光照射下高效地定向生成和释放局部热量。基于热等离子体数值计算,我们证明了这些基于双面的纳米加热器具有优越的光热转换特性(高达[公式:见文本]K)和独特的定向加热能力,能够将超过 90%的总热能引导到目标上。我们讨论了这些创新纳米加热器在热等离子体学和光热癌症治疗中的相关性,这促使纳米材料的制造技术得到了发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3999/9392775/6994c91a080a/41598_2022_17630_Fig1_HTML.jpg

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