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Synthesis of Nanoparticles by Spark Discharge as a Facile and Versatile Technique of Preparing Highly Conductive Pt Nano-Ink for Printed Electronics.
Efimov, Alexey A; Arsenov, Pavel V; Borisov, Vladislav I; Buchnev, Arseny I; Lizunova, Anna A; Kornyushin, Denis V; Tikhonov, Sergey S; Musaev, Andrey G; Urazov, Maxim N; Shcherbakov, Mikhail I; Spirin, Denis V; Ivanov, Victor V.
Afiliación
  • Efimov AA; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Arsenov PV; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Borisov VI; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Buchnev AI; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Lizunova AA; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Kornyushin DV; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Tikhonov SS; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Musaev AG; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Urazov MN; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
  • Shcherbakov MI; Kotelnikov Institute of Radioengineering and Electronics of Russian Academy of Sciences, 125009 Moscow, Russia.
  • Spirin DV; IRTIS Ltd., 105120 Moscow, Russia.
  • Ivanov VV; Moscow Institute of Physics and Technology, National Research University, 141701 Dolgoprudny, Russia.
Nanomaterials (Basel) ; 11(1)2021 Jan 18.
Article en En | MEDLINE | ID: mdl-33477440
A cost-effective, scalable and versatile method of preparing nano-ink without hazardous chemical precursors is a prerequisite for widespread adoption of printed electronics. Precursor-free synthesis by spark discharge is promising for this purpose. The synthesis of platinum nanoparticles (PtNPs) using a spark discharge under Ar, N2, and air has been investigated to prepare highly conductive nano-ink. The size, chemical composition, and mass production rate of PtNPs significantly depended on the carrier gas. Pure metallic PtNPs with sizes of 5.5 ± 1.8 and 7.1 ± 2.4 nm were formed under Ar and N2, respectively. PtNPs with sizes of 18.2 ± 9.0 nm produced using air consisted of amorphous oxide PtO and metallic Pt. The mass production rates of PtNPs were 53 ± 6, 366 ± 59, and 490 ± 36 mg/h using a spark discharge under Ar, N2, and air, respectively. It was found that the energy dissipated in the spark gap is not a significant parameter that determines the mass production rate. Stable Pt nano-ink (25 wt.%) was prepared only on the basis of PtNPs synthesized under air. Narrow (about 30 µm) and conductive Pt lines were formed by the aerosol jet printing with prepared nano-ink. The resistivity of the Pt lines sintered at 750 °C was (1.2 ± 0.1)·10-7 Ω·m, which is about 1.1 times higher than that of bulk Pt.
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Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Nanomaterials (Basel) Año: 2021 Tipo del documento: Article País de afiliación: Rusia

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Nanomaterials (Basel) Año: 2021 Tipo del documento: Article País de afiliación: Rusia
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