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Platinum nanoparticles: a non-toxic, effective and thermally stable alternative plasmonic material for cancer therapy and bioengineering

机译:铂纳米粒子:一个无毒的,有效的和耐热电浆替代材料癌症治疗和生物工程

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Absorption of near infrared (NIR) light by metallic nanoparticles can cause extreme heating and is of interest for instance in cancer treatment since NIR light has a relatively large penetration depth into biological tissue. Here, we quantify the extraordinary thermoplasmonic properties of platinum nanoparticles and demonstrate their efficiency in photothermal cancer therapy. Although platinum nanoparticles are extensively used for catalysis, they are much overlooked in a biological context. Via direct measurements based on a biological matrix we show that individual irradiated platinum nanoparticles with diameters of 50-70 nm can easily reach surface temperatures up to 900 K. In contrast to gold nanoshells, which are often used for photothermal purposes, we demonstrate that the platinum particles remain stable at these extreme temperatures. The experiments are paralleled by finite element modeling confirming the experimental results and establishing a theoretical understanding of the particles' thermoplasmonic properties. At extreme temperatures it is likely that a vapor layer will form around the plasmonic particle, and we show this scenario to be consistent with direct measurements and simulations. Viability studies demonstrate that platinum nanoparticles themselves are non-toxic at therapeutically relevant concentrations, however, upon laser irradiation we show that they efficiently kill human cancer cells. Therefore, platinum nanoparticles are highly promising candidates for thermoplasmonic applications in the life sciences, in nano-medicine, and for bio-medical engineering.
机译:光的吸收近红外(NIR)金属纳米颗粒可能会导致极端的加热感兴趣的,例如癌症治疗由于近红外光谱光相对较大生物组织穿透深度。我们量化的非凡thermoplasmonic铂纳米粒子的性质展示他们的光热光谱分析的效率癌症治疗。广泛用于催化,它们多忽略了在生物环境中。基于生物矩阵测量我们节目个人辐照铂纳米颗粒直径在50 - 70纳米很容易达到表面温度达到900 K。黄金nanoshells,通常用于光热光谱分析的目的,我们证明在这些极端铂粒子保持稳定温度。有限元建模确认实验结果和建立理论的理解粒子的thermoplasmonic属性。温度很可能将蒸汽层电浆粒子周围形成,我们表演这个场景与直接是一致的测量和模拟。证明铂纳米粒子在治疗本身是无毒的然而,相关的浓度在激光辐照我们证明他们有效地杀死人类癌症细胞。纳米颗粒非常有前途的候选人thermoplasmonic应用在生活中nano-medicine,科学和生物医学工程。

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