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Advantages of using gold hollow nanoshells in cancer photothermal therapy 被引量:1

Advantages of using gold hollow nanoshells in cancer photothermal therapy
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摘要 Lots of studies have been conducted on the optical properties of gold nanoparticles in the first region of near infrared(650 nm–950 nm), however new findings show that the second region of near-infrared(1000 nm–1350 nm) penetrates to the deeper tissues of the human body. Therefore, using the above-mentioned region in photo-thermal therapy(PTT) of cancer will be more appropriate. In this paper, absorption efficiency is calculated for gold spherical and rod-shaped nanoshells by the finite element method(FEM). The results show that the surface plasmon frequency of these nanostructures is highly dependent on the dimension and thickness of shell and it can be adjusted to the second region of near-infrared. Thus, due to their optical tunability and their high absorption efficiency the hollow nanoshells are the most appropriate options for eradicating cancer tissues. Lots of studies have been conducted on the optical properties of gold nanoparticles in the first region of near infrared(650 nm–950 nm), however new findings show that the second region of near-infrared(1000 nm–1350 nm) penetrates to the deeper tissues of the human body. Therefore, using the above-mentioned region in photo-thermal therapy(PTT) of cancer will be more appropriate. In this paper, absorption efficiency is calculated for gold spherical and rod-shaped nanoshells by the finite element method(FEM). The results show that the surface plasmon frequency of these nanostructures is highly dependent on the dimension and thickness of shell and it can be adjusted to the second region of near-infrared. Thus, due to their optical tunability and their high absorption efficiency the hollow nanoshells are the most appropriate options for eradicating cancer tissues.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2016年第8期322-330,共9页 中国物理B(英文版)
关键词 surface plasmon absorption efficiency NEAR-INFRARED NANOTUBES surface plasmon, absorption efficiency, near-infrared, nanotubes
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  • 1Brannon-Peppas L and Blanchette J O 2012 Adv. Drug Deliv. Rev. 64 206.
  • 2Yu J, Huang D Y, Yousaf M Z, Hou Y L and Gao S 2013 Chin. Phys. B 22 027506.
  • 3Jiao P F, Zhou H Y, Chen L X and Yan B 2011 Curr. Med. Chem. 18 2086.
  • 4Jain S, Hirst D G and O'Sullivan J M 2012 Br. J. Radiol. 85 101.
  • 5Wang M and Thanou M 2010 Pharmacol. Res. 62 90.
  • 6Yu M K, Park J and Jon S 2012 Theranostics. 2 3.
  • 7Kumar A, Ma H, Zhang X, Huang K, Jin S, Liu J, Wei T, Cao W, Zou G and Liang X J 2012 Biomaterials 33 1180.
  • 8Dreaden E C, Austin L A, Mackey M A and El-Sayed M A 2012 Ther. Deliv. 3 457.
  • 9Gil P R and Parak W J 2008 ACS Nano 2 2200.
  • 10Huang X and El-Sayed M A 2011 Alexandria J. Med. 47 1.

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