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Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles

The design of plasmonic nanostructures could have many exciting applications since it enhances or provides valuable control over efficient energy conversion. A three-dimensional (3D) space is a realistic hotspot matrix harvesting a wide conversion that has been shown in zero-dimensional nanoparticle...

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Autores principales: Zhang, Dechen, Wu, Hung-jen, Zhou, Xinyu, Qi, Ruogu, Xu, Li, Guo, Yi, Liu, Xuewu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056356/
https://www.ncbi.nlm.nih.gov/pubmed/35516029
http://dx.doi.org/10.1039/d0ra03379k
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author Zhang, Dechen
Wu, Hung-jen
Zhou, Xinyu
Qi, Ruogu
Xu, Li
Guo, Yi
Liu, Xuewu
author_facet Zhang, Dechen
Wu, Hung-jen
Zhou, Xinyu
Qi, Ruogu
Xu, Li
Guo, Yi
Liu, Xuewu
author_sort Zhang, Dechen
collection PubMed
description The design of plasmonic nanostructures could have many exciting applications since it enhances or provides valuable control over efficient energy conversion. A three-dimensional (3D) space is a realistic hotspot matrix harvesting a wide conversion that has been shown in zero-dimensional nanoparticles, one-dimensional linear structures, or two-dimensional films. A novel 3D plasmonic nanostructure platform consisting of plasmonic metal nanoparticles in discoidal porous silicon particles is used in this study. Plasmonic gold nanoparticles are anchored inside the discoidal porous silicon (DPS) particles by in situ reduction synthesis. The novel plasmonic nanostructures can tailor the plasmon band and overcome the instability of photothermal materials. The “trapping well” for the anchored nanoparticles in 3D space can result in a huge change of plasmonic band of metal nanoparticles to the near-IR region in a novel 3D geometry. A multifunctional scaffold, Au–DPS particle, composed of doxorubicin conjugated to poly-(l-glutamic acid) (pDOX), was developed for combinatorial chemo-photothermal cancer therapy. The therapeutic efficacy was examined in treatment of the A549 cell line under near-IR laser irradiation. The highly efficient photothermal conversion can also be demonstrated in the laser desorption/ionization time-of-flight mass spectrometry detection analysis. The limit of detection was obviously improved in the detection of angiotensin II, P14R, and ACTH fragments 18-39 peptides. Overall, we envision that Au–DPS particles may be used in ultrasensitive theranostics in the future.
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spelling pubmed-90563562022-05-04 Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles Zhang, Dechen Wu, Hung-jen Zhou, Xinyu Qi, Ruogu Xu, Li Guo, Yi Liu, Xuewu RSC Adv Chemistry The design of plasmonic nanostructures could have many exciting applications since it enhances or provides valuable control over efficient energy conversion. A three-dimensional (3D) space is a realistic hotspot matrix harvesting a wide conversion that has been shown in zero-dimensional nanoparticles, one-dimensional linear structures, or two-dimensional films. A novel 3D plasmonic nanostructure platform consisting of plasmonic metal nanoparticles in discoidal porous silicon particles is used in this study. Plasmonic gold nanoparticles are anchored inside the discoidal porous silicon (DPS) particles by in situ reduction synthesis. The novel plasmonic nanostructures can tailor the plasmon band and overcome the instability of photothermal materials. The “trapping well” for the anchored nanoparticles in 3D space can result in a huge change of plasmonic band of metal nanoparticles to the near-IR region in a novel 3D geometry. A multifunctional scaffold, Au–DPS particle, composed of doxorubicin conjugated to poly-(l-glutamic acid) (pDOX), was developed for combinatorial chemo-photothermal cancer therapy. The therapeutic efficacy was examined in treatment of the A549 cell line under near-IR laser irradiation. The highly efficient photothermal conversion can also be demonstrated in the laser desorption/ionization time-of-flight mass spectrometry detection analysis. The limit of detection was obviously improved in the detection of angiotensin II, P14R, and ACTH fragments 18-39 peptides. Overall, we envision that Au–DPS particles may be used in ultrasensitive theranostics in the future. The Royal Society of Chemistry 2020-08-20 /pmc/articles/PMC9056356/ /pubmed/35516029 http://dx.doi.org/10.1039/d0ra03379k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Dechen
Wu, Hung-jen
Zhou, Xinyu
Qi, Ruogu
Xu, Li
Guo, Yi
Liu, Xuewu
Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
title Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
title_full Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
title_fullStr Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
title_full_unstemmed Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
title_short Enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
title_sort enhanced thermal effect of plasmonic nanostructures confined in discoidal porous silicon particles
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056356/
https://www.ncbi.nlm.nih.gov/pubmed/35516029
http://dx.doi.org/10.1039/d0ra03379k
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