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沉积在聚(酰胺胺)接枝碳纳米管上的银纳米颗粒的光热效应。

Photothermal effect of Ag nanoparticles deposited over poly(amidoamine) grafted carbon nanotubes.

作者信息

Neelgund Gururaj M, Oki Aderemi

机构信息

Department of Chemistry, Prairie View A&M University, Prairie View, TX 77446, United States.

出版信息

J Photochem Photobiol A Chem. 2018 Sep 1;364:309-315. doi: 10.1016/j.jphotochem.2018.06.007. Epub 2018 Jun 4.

Abstract

This paper illustrates the potential of Ag nanoparticles based nanocomposites to use as effective agents in photothermal therapy apart from their traditional employment as antimicrobial materials. Herein an Near- Infrared active photothermal agent was fabricated by deposition of Ag nanoparticles over aromatic poly(amidoamine) grafted carbon nanotubes. Thus prepared CNTs-PAMAM-Ag possessed strong photothermal effect under exposure to 980 nm laser system and prominent photothermal stability. The photothermal conversion efficiency of CNTs-PAMAM-Ag was found to be higher than readily used Au and CuS based photothermal agents. The photothermal effect of CNTs-PAMAM-Ag was substantial in presence of 980 nm laser compared to 808 nm laser and a linear dependence of photothermal effect on its concentration was identified. The maximum temperature attained by CNTs-PAMAM-Ag during assessment of its photothermal effect was about 66.0 °C, which is significantly higher than the survival temperature level of cancer cells. So CNTs-PAMAM-Ag could be a promising photothermal agent to apply in future photothermal hyperthermia therapy to treat cancer. Moreover CNTs-PAMAM-Ag can synchronous trigger by a single wavelength (980 nm) laser system, so it could simplify the future therapeutic process.

摘要

本文阐述了基于银纳米颗粒的纳米复合材料除了作为抗菌材料的传统用途外,在光热疗法中用作有效药剂的潜力。在此,通过在芳族聚(酰胺胺)接枝的碳纳米管上沉积银纳米颗粒制备了一种近红外活性光热剂。如此制备的CNTs-PAMAM-Ag在980nm激光系统照射下具有很强的光热效应和出色的光热稳定性。发现CNTs-PAMAM-Ag的光热转换效率高于常用的基于金和硫化铜的光热剂。与808nm激光相比,在980nm激光存在下,CNTs-PAMAM-Ag的光热效应显著,并且确定了光热效应与其浓度呈线性关系。在评估其光热效应期间,CNTs-PAMAM-Ag达到的最高温度约为66.0°C,这明显高于癌细胞的存活温度水平。因此,CNTs-PAMAM-Ag可能是一种有前途的光热剂,可用于未来的光热热疗治疗癌症。此外,CNTs-PAMAM-Ag可以由单波长(980nm)激光系统同步触发,因此可以简化未来的治疗过程。

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