Literature DB >> 31703230

Effective size separation of laser-generated, surfactant-free nanoparticles by continuous centrifugation.

Sebastian Kohsakowski1, Felix Seiser, Jan-Philipp Wiederrecht, Sven Reichenberger, Thomas Vinnay, Stephan Barcikowski, Galina Marzun.   

Abstract

High-power, nanosecond, pulsed-laser ablation in liquids enables the continuous synthesis of highly pure colloidal nanoparticles (NPs) at an application-relevant scale. The gained mass-weighted particle size distribution is however often reported to be broad, requiring post treatment like centrifugation to remove undesired particle size fractions. To date, available centrifugation techniques are generally discontinuous, limiting the throughput and hindering economic upscaling. Hence, throughout this paper, a scalable, continuously operating centrifugation of laser-generated platinum NPs in a tubular bowl centrifuge is reported for the first time. To that end, using a 121 W ns-laser, the continuous production of a colloidal suspension of NPs, yet with broad particle size distribution has been employed, yielding productivities of 1-2 g h-1 for gold, silver, and platinum. The power-specific productivities (Au: 18 mg h-1 W-1, Pt: 13 mg h-1 W-1, Ag: 8 mg h-1 W-1, Ni: 6 mg h-1 W-1) are far higher than reported before. Subsequent downstream integration of a continuously operating tubular bowl centrifuge was successfully achieved for Pt NPs allowing the removal of undesired particle size with high throughput. By means of a systematic study of relevant centrifugation parameters involved, effective size optimization and respective size sharpness parameters for a maximum Pt NP diameter of 10 nm are reported. The results of the experimental centrifugation of laser-generated Pt NPs were in excellent agreement with the theoretically calculated cut-off diameter. After centrifugation with optimized parameters (residence time of 5 min; g-force of 38,454 g), the polydispersity indices of the Pt NPs size distributions were reduced by a factor of six, and high monodispersity was observed.

Entities:  

Year:  2019        PMID: 31703230     DOI: 10.1088/1361-6528/ab55bd

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  3 in total

1.  Soft Sensor Development for Real-Time Process Monitoring of Multidimensional Fractionation in Tubular Centrifuges.

Authors:  Marvin Winkler; Marco Gleiss; Hermann Nirschl
Journal:  Nanomaterials (Basel)       Date:  2021-04-25       Impact factor: 5.076

2.  Nanocomposite Concept for Electrochemical In Situ Preparation of Pt-Au Alloy Nanoparticles for Formic Acid Oxidation.

Authors:  Jia Du; Jonathan Quinson; Damin Zhang; Baiyu Wang; Gustav K H Wiberg; Rebecca K Pittkowski; Johanna Schröder; Søren B Simonsen; Jacob J K Kirkensgaard; Yao Li; Sven Reichenberger; Stephan Barcikowski; Kirsten M Ø Jensen; Matthias Arenz
Journal:  JACS Au       Date:  2022-07-06

3.  Purification of a Hydrophobic Elastin-Like Protein Toward Scale-Suitable Production of Biomaterials.

Authors:  Sandra Haas; Monika Desombre; Frank Kirschhöfer; Matthias C Huber; Stefan M Schiller; Jürgen Hubbuch
Journal:  Front Bioeng Biotechnol       Date:  2022-06-22
  3 in total

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