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基于有限元模型的钯纳米颗粒光热效应的理论与实验研究

Theoretical and experimental study on the photothermal effect of palladium nanoparticles based on a finite element model.

作者信息

Li Dong, Feng Jing, Zhang Xinzhi, Zhao Penghui, Xing Linzhuang, Chen Bin, Fan Lihong

机构信息

State Key Laboratory of Multiphase Flow in Power Engineering, Xi'an Jiaotong University, Xi'an, Shaanxi, 710049, China.

School of Advanced Materials and Nanotechnology, Xidian University, Xi'an, Shaanxi, 710071, China.

出版信息

Lasers Med Sci. 2023 Dec 12;39(1):3. doi: 10.1007/s10103-023-03952-6.


DOI:10.1007/s10103-023-03952-6
PMID:38082158
Abstract

Palladium nanoparticles (Pd NPs) show significant promise as agents for the photothermal treatment of tumors due to their high photothermal conversion efficiency and thermal stability. theoretical calculations were conducted to investigate the electric field and solid heat conduction of Pd NPs with various sizes and particle distances, aiming to achieve the maximum photothermal conversion efficiency during laser irradiation. Subsequently, Pd NPs with optimal size and structure were synthesized. In vitro and in vivo experiments were conducted to evaluate photothermal conversion. The theoretical results indicated that a peak temperature of 90.12 °C is achieved when the side length is 30 nm with a distance of 2 nm. In vitro experiments demonstrated that the photothermal conversion efficiency of Pd NPs can reach up to 61.9%. in vivo experiments revealed that injecting Pd NPs into blood vessels can effectively reduce the number of laser pulses by 22.22%, thereby inducing obvious vasoconstriction.

摘要

钯纳米颗粒(Pd NPs)因其高光热转换效率和热稳定性,在肿瘤光热治疗中显示出巨大潜力。进行了理论计算以研究不同尺寸和颗粒间距的Pd NPs的电场和固体热传导,旨在在激光照射期间实现最大光热转换效率。随后,合成了具有最佳尺寸和结构的Pd NPs。进行了体外和体内实验以评估光热转换。理论结果表明,当边长为30 nm且间距为2 nm时,可达到90.12℃的峰值温度。体外实验表明,Pd NPs的光热转换效率可高达61.9%。体内实验表明,将Pd NPs注入血管可有效减少22.22%的激光脉冲数量,从而引起明显的血管收缩。

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本文引用的文献

[1]
Photodynamic and Photothermal Therapies: Synergy Opportunities for Nanomedicine.

ACS Nano. 2023-5-9

[2]
Reversing insufficient photothermal therapy-induced tumor relapse and metastasis by regulating cancer-associated fibroblasts.

Nat Commun. 2022-5-19

[3]
Micelle-directed chiral seeded growth on anisotropic gold nanocrystals.

Science. 2020-6-26

[4]
Synthesis of porous Pd nanoparticles by therapeutic chaga extract for highly efficient tri-modal cancer treatment.

Nanoscale. 2018-11-1

[5]
Photothermal therapy and photoacoustic imaging via nanotheranostics in fighting cancer.

Chem Soc Rev. 2019-4-1

[6]
Magneto-Optical properties of noble-metal nanostructures: functional nanomaterials for bio sensing.

Sci Rep. 2018-8-23

[7]
Temperature-dependent cell death patterns induced by functionalized gold nanoparticle photothermal therapy in melanoma cells.

Sci Rep. 2018-6-7

[8]
Organic molecule-based photothermal agents: an expanding photothermal therapy universe.

Chem Soc Rev. 2018-4-3

[9]
Differential Pd-nanocrystal facets demonstrate distinct antibacterial activity against Gram-positive and Gram-negative bacteria.

Nat Commun. 2018-1-9

[10]
Targeted Nanomaterials for Phototherapy.

Nanotheranostics. 2017-1-1

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