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Functional Coatings for X-ray Fluorescent Nanoparticles

  • G. M. Saladino*
  • , N. I. Kilic
  • , K. Shaker
  • , Y. Li
  • , B. Hamawandi
  • , C. Vogt
  • , B. Brodin
  • , M. Svenda
  • , I. Yazgan
  • , H. M. Hertz
  • , M. S. Toprak
  • *Šī darba korespondējošais autors
  • KTH Royal Institute of Technology
  • Kastamonu University

Zinātniskās darbības rezultāts: Nodaļa grāmatā/enciklopēdijā/konferences krājumāKonferences zinātniskais rakstsPētniecībakoleģiāli recenzēts

Kopsavilkums

In recent years, the design and synthesis of bio-compatible coatings leading to hybrid nanoparticles (NPs) as the contrast agents have gained substantial relevance. Furthermore, the addition of several functionalities for bio-imaging applications represents a key step for non-invasive bio-diagnostics. In this context, we design and utilize hybrid nanostructures for X-ray fluorescence computed tomography (XFCT). The combination of a ceramic or metallic core–based on MoO2, Rh or Ru–with a protective shell allows the generation of bio-compatible nanohybrids for dual mode bio-imaging, where the core NPs constitute the X-ray fluorescence (XRF) contrast agents [1]–[3]. Core NPs are synthesized via polyol, hydrothermal or microwave-assisted hydrothermal methods, yielding uniform shape and high dispersibility in aqueous media. Different approaches have been pursued for the fabrication of a bio-compatible shell coating. A modified sol-gel based silica coating process, doped with a commercial fluorophore (Cy5.5), was developed and shown to be applicable to both ceramic and metallic NPs [4], forming core-shell NPs with both optical and X-ray fluorescence properties. Alternatively, carbon quantum dots (CQDs) were synthesized via citrate pyrolysis using microwave-assisted hydrothermal method, exhibiting uniform size distribution (1.6±0.4 nm) and excitation-independent emission (440 nm). Conjugation of these CQDs, via cross-linking, with Rh NPs led to excitation-independent hybrid NPs, with a red-shifted emission wavelength (520 nm), attributed to the reduction of pyrrolic nitrogen on CQDs [5]. These hybrid NPs exhibit improved in vitro biocompatibility in comparison with bare XRF contrast agents. Furthermore, the optical fluorescence–provided by Cy5.5 or CQDs–allows the localization of the NPs in the intracellular environment while the XRF signal from the core NPs is utilized for XFCT, in small animals, leading to both a microscopic and macroscopic bio-imaging contrast agent.

OriģinālvalodaAngļu
Publikācijas avota nosaukumsProceedings of the 6th International Conference on Theoretical and Applied Nanoscience and Nanotechnology, TANN 2022
IzdevējsAvestia Publishing
ISBN (Drukātā versija)9781990800030
DOIs
Publikācijas statussPublicēts - 2022
Ārēji publicēts
PasākumsProceedings of the 6th International Conference on Theoretical and Applied Nanoscience and Nanotechnology, TANN 2022 - Niagara Falls, Kanāda
Ilgums: 2 jūn. 20224 jūn. 2022

Publikāciju sērijas

NosaukumsProceedings of the International Conference of Theoretical and Applied Nanoscience and Nanotechnology
Sējums6
ISSN (Elektroniskā versija)2561-1070

Konference

KonferenceProceedings of the 6th International Conference on Theoretical and Applied Nanoscience and Nanotechnology, TANN 2022
Valsts/TeritorijaKanāda
PilsētaNiagara Falls
Periods2/06/224/06/22

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