Determining the role of redox-active materials during laser-induced water decomposition.
Clicks: 247
ID: 11591
2019
Article Quality & Performance Metrics
Overall Quality
Not rated
Combines reader engagement with the AI quality analysis. This
article has not been analysed, so there is no overall score —
reader engagement is measured and shown alongside.
Reader Engagement
Steady Performance
70.2
/100
247 views
206 readers
Trending
AI Quality Assessment
Not analyzed
Readership in this journal
SteadyRanked #63 of 184 articles by views in Physical chemistry chemical physics : PCCP
Most read
Least read
Bar heights use a square-root scale. Only the 120 most-read articles are drawn; the journal has 184 in total.
Mint this article as an NFT
Not yet mintedCreate a permanent, verifiable on-chain record of this article on the Scimatic Network. The NFT is held in your Journament account, and you can withdraw it to your own wallet at any time.
5
SUSD
one-off · no wallet required
Abstract
Laser ablation in liquids (LAL) drives the decomposition of the liquid inducing the formation of a large number of different redox equivalents and gases. This not only leads to shielding effects and a decrease of the nanoparticle (NP) productivity but also can directly affect the NP properties such as the oxidation degree. In this study, we demonstrate that liquid decomposition during laser ablation in water is triggered by the redox activity of the 7 different bulk materials used; Au, Pt, Ag, Cu, Fe, Ti and Al, as well as by the reactivity of water with the plasma. Laser ablation of less-noble metals like aluminum leads to a massive gas evolution up to 390 cm3 per hour with molar hydrogen to oxygen ratios of 17.1. For more noble metals such as gold and platinum, water splitting induced by LAL is the dominant feature leading to gas volume formation rates of 10 up to 30 cm3 per hour and molar hydrogen to oxygen ratios of 1.2. We quantify the material-dependent ablation rate, shielding effects as well as the amount of hydrogen peroxide produced, directly affecting the yield and oxidation of the nanoparticles on the long-time scale.
| Reference Key |
kalus2019determiningphysical
Use this key to autocite in the manuscript while using
SciMatic Manuscript Manager or Thesis Manager
|
|---|---|
| Authors | Kalus, Mark-Robert;Lanyumba, Riskyanti;Lorenzo-Parodi, Nerea;Jochmann, Maik A;Kerpen, Klaus;Hagemann, Ulrich;Schmidt, Torsten C;Barcikowski, Stephan;Gökce, Bilal; |
| Journal | Physical chemistry chemical physics : PCCP |
| Year | 2019 |
| DOI |
10.1039/c9cp02663k
|
| URL | |
| Keywords | Keywords not found |
Citations
No citations found. To add a citation, contact the admin at info@scimatic.org
Comments
No comments yet. Be the first to comment on this article.