Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties

Nanoparticles produced in technical aerosol processes exhibit often dendritic structures, composed of primary particles. Surprisingly, a small but consistent discrepancy was observed between the results of common aggregation models and in situ measurements of structural parameters, such as fractal d...

Full description

Bibliographic Details
Main Authors: Vinzent Olszok, Malte Bierwirth, Alfred P. Weber
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/11/9/2266
id doaj-d5b6755fd7b64a8382bf7d1e87d290cd
record_format Article
spelling doaj-d5b6755fd7b64a8382bf7d1e87d290cd2021-09-26T00:48:25ZengMDPI AGNanomaterials2079-49912021-08-01112266226610.3390/nano11092266Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface PropertiesVinzent Olszok0Malte Bierwirth1Alfred P. Weber2Institute of Particle Technology, Clausthal University of Technology, Leibnizstrasse 19, D-38678 Clausthal-Zellerfeld, GermanyInstitute of Particle Technology, Clausthal University of Technology, Leibnizstrasse 19, D-38678 Clausthal-Zellerfeld, GermanyInstitute of Particle Technology, Clausthal University of Technology, Leibnizstrasse 19, D-38678 Clausthal-Zellerfeld, GermanyNanoparticles produced in technical aerosol processes exhibit often dendritic structures, composed of primary particles. Surprisingly, a small but consistent discrepancy was observed between the results of common aggregation models and in situ measurements of structural parameters, such as fractal dimension or mass-mobility exponent. A phenomenon which has received little attention so far is the interaction of agglomerates with admixed gases, which might be responsible for this discrepancy. In this work, we present an analytical series, which underlines the agglomerate morphology depending on the reducing or oxidizing nature of a carrier gas for platinum particles. When hydrogen is added to openly structured particles, as investigated by tandem differential mobility analysis (DMA) and transmission electron microscopy (TEM) analysis, Pt particles compact already at room temperature, resulting in an increased fractal dimension. Aerosol Photoemission Spectroscopy (APES) was also able to demonstrate the interaction of a gas with a nanoscaled platinum surface, resulting in a changed sintering behavior for reducing and oxidizing atmospheres in comparison to nitrogen. The main message of this work is about the structural change of particles exposed to a new environment after complete particle formation. We suspect significant implications for the interpretation of agglomerate formation, as many aerosol processes involve reactive gases or slightly contaminated gases in terms of trace amounts of unintended species.https://www.mdpi.com/2079-4991/11/9/2266platinumspark dischargemorphologysinteringHydrogenfractal dimension
collection DOAJ
language English
format Article
sources DOAJ
author Vinzent Olszok
Malte Bierwirth
Alfred P. Weber
spellingShingle Vinzent Olszok
Malte Bierwirth
Alfred P. Weber
Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties
Nanomaterials
platinum
spark discharge
morphology
sintering
Hydrogen
fractal dimension
author_facet Vinzent Olszok
Malte Bierwirth
Alfred P. Weber
author_sort Vinzent Olszok
title Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties
title_short Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties
title_full Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties
title_fullStr Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties
title_full_unstemmed Interaction of Reactive Gases with Platinum Aerosol Particles at Room Temperature: Effects on Morphology and Surface Properties
title_sort interaction of reactive gases with platinum aerosol particles at room temperature: effects on morphology and surface properties
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2021-08-01
description Nanoparticles produced in technical aerosol processes exhibit often dendritic structures, composed of primary particles. Surprisingly, a small but consistent discrepancy was observed between the results of common aggregation models and in situ measurements of structural parameters, such as fractal dimension or mass-mobility exponent. A phenomenon which has received little attention so far is the interaction of agglomerates with admixed gases, which might be responsible for this discrepancy. In this work, we present an analytical series, which underlines the agglomerate morphology depending on the reducing or oxidizing nature of a carrier gas for platinum particles. When hydrogen is added to openly structured particles, as investigated by tandem differential mobility analysis (DMA) and transmission electron microscopy (TEM) analysis, Pt particles compact already at room temperature, resulting in an increased fractal dimension. Aerosol Photoemission Spectroscopy (APES) was also able to demonstrate the interaction of a gas with a nanoscaled platinum surface, resulting in a changed sintering behavior for reducing and oxidizing atmospheres in comparison to nitrogen. The main message of this work is about the structural change of particles exposed to a new environment after complete particle formation. We suspect significant implications for the interpretation of agglomerate formation, as many aerosol processes involve reactive gases or slightly contaminated gases in terms of trace amounts of unintended species.
topic platinum
spark discharge
morphology
sintering
Hydrogen
fractal dimension
url https://www.mdpi.com/2079-4991/11/9/2266
work_keys_str_mv AT vinzentolszok interactionofreactivegaseswithplatinumaerosolparticlesatroomtemperatureeffectsonmorphologyandsurfaceproperties
AT maltebierwirth interactionofreactivegaseswithplatinumaerosolparticlesatroomtemperatureeffectsonmorphologyandsurfaceproperties
AT alfredpweber interactionofreactivegaseswithplatinumaerosolparticlesatroomtemperatureeffectsonmorphologyandsurfaceproperties
_version_ 1716869815046504448