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Shape-Dependent Locomotion of DNA-Linked Magnetic Nanoparticle Films
  • Ko, Jein ;
  • Kim, Jongwook ;
  • Ki, Kanghyun ;
  • Moon, Soyoon ;
  • Jeon, Hyunjin ;
  • Park, Jin Hyeok ;
  • Golla, Murali ;
  • Chun, Chan Joo ;
  • Kim, Jong Sik ;
  • Lee, Anna ;
  • Kim, Hyoungsoo ;
  • Park, Sarah S. ;
  • Shim, Tae Soup ;
  • Park, So Jung
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Publication Year
2025-01-08
Publisher
American Chemical Society
Citation
Nano Letters, Vol.25, pp.419-425
Keyword
DNAIron oxide nanoparticleLayer-by-layerLocomotionSelf-assemblySuperparamagnetic
Mesh Keyword
Biomedical researchGold nanoparticleIron oxide nanoparticleLayer by layerLayer-by-layer assembliesLocomotionMagnetic-fieldNanoparticle filmsOxide nanoparticlesSuperparamagneticsDNAFerric CompoundsGoldMagnetic FieldsMagnetite NanoparticlesMetal Nanoparticles
All Science Classification Codes (ASJC)
BioengineeringChemistry (all)Materials Science (all)Condensed Matter PhysicsMechanical Engineering
Abstract
The shape-dependent aero- and hydro-dynamics found in nature have been adopted in a wide range of areas spanning from daily transportation to forefront biomedical research. Here, we report DNA-linked nanoparticle films exhibiting shape-dependent magnetic locomotion, controlled by DNA sequences. Fabricated through a DNA-directed layer-by-layer assembly of iron oxide and gold nanoparticles, the multifunctional films exhibit rotational and translational motions under magnetic fields, along with reversible shape morphing via DNA strand exchange reactions. Notably, the shape of the film significantly influences its magnetic responsiveness, attributable to shape-dependent drag forces acting on mesoscopic films. The distinctive shape dependence combined with the shape-changing capability offers an approach to regulate magnetic locomotion within a constant magnetic field, as demonstrated here through the go and stop motion of nanoparticle films without altering the magnetic field.
Language
eng
URI
https://dspace.ajou.ac.kr/dev/handle/2018.oak/34679
DOI
https://doi.org/10.1021/acs.nanolett.4c05189
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Type
Article
Funding
This study was supported by National Research Foundation of Korea grants funded by the Government of Korea (MSIT) (RS-2024-00397807, RS-2023-00274736). J.K. acknowledges financial support from the Basic Science Research Program through NRF funded by the Ministry of Education (RS-2023-00246195).
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Shim, Tae Soup Image
Shim, Tae Soup심태섭
Department of Chemical Engineering
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