Alternative Local Melting‐Solidification of Suspended Nanoparticles for Heterostructure Formation Enabled by Pulsed Laser Irradiation

Author:

Shakeri Mohammad Sadegh1ORCID,Swiatkowska‐Warkocka Zaneta1,Polit Oliwia1,Itina Tatiana2,Maximenko Alexey3,Depciuch Joanna14,Gurgul Jacek5,Mitura‐Nowak Marzena1,Perzanowski Marcin1,Dziedzic Andrzej6,Nęcki Jarosław7

Affiliation:

1. Institute of Nuclear Physics Polish Academy of Sciences Krakow PL‐31342 Poland

2. Université Jean Monnet Saint‐Etienne CNRS Institut d Optique Graduate School Laboratoire Hubert Curien UMR 5516 Saint‐Étienne F‐42023 France

3. SOLARIS National Synchrotron Radiation Centre Jagiellonian University Krakow 30‐392 Poland

4. Department of Biochemistry and Molecular Biology Medical University of Lublin Lublin 20‐059 Poland

5. Jerzy Haber Institute of Catalysis and Surface Chemistry Polish Academy of Sciences Niezapominajek 8 Krakow 30‐239 Poland

6. College of Natural Sciences University of Rzeszow Pigonia 1 Rzeszow 35‐310 Poland

7. AGH University of Science and Technology Al. Adama Mickiewicza 30 Kraków 30‐059 Poland

Abstract

AbstractPhase formation by pulsed laser irradiation of suspended nanoparticles has recently been introduced as a promising synthesis technique for heterostructures. The main challenge still lingers regarding the exact mechanism of particle formation due to the non‐equilibrium kinetic by‐products resulting from the localized alternative, fast, high‐temperature nature of the process. Here, the authors analyze the bond breaking/formation of copper or copper (II) interfaces with ethanol during the absorption of pulses for Cu‐CuO‐Cu2O formation applicable as an electrocatalyst in ethanol oxidation fuel cells. This study includes but is not limited to, a comprehensive discussion of the interaction between nano‐laser pulses and suspension for practical control of the synthesis process. The observed exponential and logarithmic changes in the content of heterostructures for the CuO‐ethanol and Cu‐ethanol samples irradiated with different fluences are interpreted as the dominant role of physical and chemical reactions, respectively, during the pulsed laser irradiation of suspensions synthesis. It is also shown that the local interface between dissociated ethanol and the molten sphere is responsible for the oxidative/reductive interactions resulting in the formation of catalytic‐augmented Cu3+ by‐product, thanks to the reactive bond force field molecular dynamics studies confirmed by ab‐initio calculations and experimental observations.

Funder

Narodowym Centrum Nauki

Akademia Górniczo-Hutnicza im. Stanislawa Staszica

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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1. Laser synthesis of nanoparticles in organic solvents – products, reactions, and perspectives;Beilstein Journal of Nanotechnology;2024-06-05

2. Mechanisms of laser-based synthesis and modifications of nanomaterials;Nanoscale and Quantum Materials: From Synthesis and Laser Processing to Applications 2024;2024-03-12

3. Controlling the Magnetic Properties of Fe-Based Composite Nanoparticles;Acta Physica Polonica A;2024-02

4. Understanding mono- and bi-metallic Au and Ni nanoparticle responses to fast heating;Nanoscale Advances;2024

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