Detail publikačního výsledku

Tailored thermally stable functionalization of CsPbBr3 nanocrystals for polymer nanocomposite scintillator fabrication

KRAL, J.; DECKA, K.; LIŠKA, P.; TORRES, S.; VALENTA, J.; BABIN, V.; MONZON, I.; CUBA, V.; MIHOKOVA, E.; AUFFRAY, E.

Originální název

Tailored thermally stable functionalization of CsPbBr3 nanocrystals for polymer nanocomposite scintillator fabrication

Anglický název

Tailored thermally stable functionalization of CsPbBr3 nanocrystals for polymer nanocomposite scintillator fabrication

Druh

Článek WoS

Originální abstrakt

CsPbBr3 nanocomposites are prospective luminescent materials with great potential for many light-emitting applications. However, embedding CsPbBr3 nanocrystals into some potentially interesting matrices proves challenging in terms of maintaining their properties and good transparency of the final nanocomposite, e.g., high temperature polymerization of widely used and radiation-hard polystyrene or employment of more polar polymers such as polyurethanes often leads to nanocrystal degradation. Here, we present a functionalization strategy using ammonium hexafluorosilicate in combination with functional organosilanes for the fabrication of CsPbBr3 nanocomposites, which provides improved thermal stability of surface passivation up to 110 degrees C. Moreover, it enables for the first time concomitant surface modification to enhance compatibility between nanocrystals and the matrix, leading to improved transparency of nanocomposites. We demonstrate that the process can be tailored by preparing polystyrene (PS) and polyurethane (PU) nanocomposites. This opens the way for easier processability of popular high cure temperature polymers such as polystyrene, as well as for efficient embedding of NCs into novel matrices with the aim of exploiting crucial properties for desired applications, for example, radiation hardness or flexibility.

Anglický abstrakt

CsPbBr3 nanocomposites are prospective luminescent materials with great potential for many light-emitting applications. However, embedding CsPbBr3 nanocrystals into some potentially interesting matrices proves challenging in terms of maintaining their properties and good transparency of the final nanocomposite, e.g., high temperature polymerization of widely used and radiation-hard polystyrene or employment of more polar polymers such as polyurethanes often leads to nanocrystal degradation. Here, we present a functionalization strategy using ammonium hexafluorosilicate in combination with functional organosilanes for the fabrication of CsPbBr3 nanocomposites, which provides improved thermal stability of surface passivation up to 110 degrees C. Moreover, it enables for the first time concomitant surface modification to enhance compatibility between nanocrystals and the matrix, leading to improved transparency of nanocomposites. We demonstrate that the process can be tailored by preparing polystyrene (PS) and polyurethane (PU) nanocomposites. This opens the way for easier processability of popular high cure temperature polymers such as polystyrene, as well as for efficient embedding of NCs into novel matrices with the aim of exploiting crucial properties for desired applications, for example, radiation hardness or flexibility.

Klíčová slova

CsPbBr3; scintillators; nanocomposites

Klíčová slova v angličtině

CsPbBr3; scintillators; nanocomposites

Autoři

KRAL, J.; DECKA, K.; LIŠKA, P.; TORRES, S.; VALENTA, J.; BABIN, V.; MONZON, I.; CUBA, V.; MIHOKOVA, E.; AUFFRAY, E.

Vydáno

17.02.2026

Nakladatel

Royal Soc Chemistry

Periodikum

Journal of Materials Chemistry C

Číslo

January

Stát

Spojené království Velké Británie a Severního Irska

Strany počet

11

URL

BibTex

@article{BUT201397,
  author="{} and  {} and Petr {Liška} and  {} and  {} and  {} and  {} and  {} and  {} and  {}",
  title="Tailored thermally stable functionalization of CsPbBr3 nanocrystals for polymer nanocomposite scintillator fabrication",
  journal="Journal of Materials Chemistry C",
  year="2026",
  number="January",
  pages="11",
  doi="10.1039/d5tc03614c",
  issn="2050-7526",
  url="https://pubs.rsc.org/en/content/articlelanding/2026/tc/d5tc03614c"
}