What are the species involved in the gliding arc plasma synthesis of heterogeneous catalysts?

被引:6
作者
Hanon, Fanny [1 ]
Hermans, Sophie [1 ]
Gaigneaux, Eric M. [1 ,2 ]
机构
[1] Univ Catholique Louvain UCLouvain, Inst Condensed Matter & Nanosci IMCN, Louvain, Belgium
[2] Univ Catholique Louvain UCLouvain, Inst Condensed Matter & Nanosci IMCN, Pl Louis Pasteur 1, B-1348 Louvain La Neuve, Belgium
关键词
Glidarc plasma; Plasma species; Catalyst synthesis; Mn oxide; Fe oxide; Oxidoreduction; HYDROXYL RADICAL FORMATION; QUANTITATIVE PROBE; HYDROGEN-PEROXIDE; DISCHARGE; TIO2; CHEMISTRY; OXIDATION; COUMARIN; NANORODS; OXIDE;
D O I
10.1016/j.cattod.2024.114550
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Gliding arc plasma is an innovative method for synthesizing heterogeneous catalysts. All the hypothetical reactions from the literature currently attempting to explain the catalyst formation (usually metal (hydr)oxide), when precursors (metal salts) are exposed to plasma, only involve OH degrees and NO degrees radicals. Yet, these reactions remain unverified, and other reactive plasma species generated have never been considered to exert an influence on the precipitation of (hydr)oxide particles. In this context, this contribution investigates which species are responsible for the oxidoreduction of precursors exposed to the glidarc, with a specific focus on the role of NO degrees and OH degrees in the oxidoreduction of iron salts. To investigate the role of OH degrees radicals, radical scavenger (coumarin) was used. Similar solids precipitated whenever coumarin was used or not, suggesting that other plasmagenerated species might contribute to the oxidation process, such as long-lived species. To challenge this hypothesis, the behaviour of metal precursors in demineralized water pre-exposed to plasma was studied. Similar precipitates were formed for both FeSO4 and KMnO4 when exposed to this "activated" water and when directly exposed to the discharge, showing that the predominant initiators of the precipitation are the long-lived species, that we identified in our system to be NO3 - and HNO2/NO2- . We demonstrate that HNO2/NO2- species play a prominent role in the plasma precipitation process which has never been reported before. Yet slight differences in the composition of the precipitates formed when no short-lived species were present suggests that HNO2/NO2may not be the sole agent responsible for initiating the precipitation.
引用
收藏
页数:10
相关论文
共 44 条
[1]   Plasma-Assisted Synthesis of TiO2 Nanorods by Gliding Arc Discharge Processing at Atmospheric Pressure for Photocatalytic Applications [J].
Acayanka, E. ;
Djowe, A. Tiya ;
Laminsi, S. ;
Tchoumkwe, C. C. ;
Nzali, S. ;
Mbouopda, A. Poupi ;
Ndifon, P. T. ;
Gaigneaux, E. M. .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2013, 33 (04) :725-735
[2]   Synthesis, Characterization and Photocatalytic Application of TiO2/SnO2 Nanocomposite Obtained Under Non-thermal Plasma Condition at Atmospheric Pressure [J].
Acayanka, Elie ;
Kuete, Duclair S. ;
Kamgang, Georges Y. ;
Nzali, Serge ;
Laminsi, Samuel ;
Ndifon, Peter T. .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2016, 36 (03) :799-811
[3]   SPECTROPHOTOMETRIC DETERMINATION OF HYDROGEN PEROXIDE IN MILK [J].
AMIN, VM ;
OLSON, NF .
JOURNAL OF DAIRY SCIENCE, 1967, 50 (04) :461-&
[4]   Catalytic enrichment of plasma with hydroxyl radicals in the aqueous phase at room temperature [J].
Audemar, Maite ;
Vallcorba, Oriol ;
Peral, Inma ;
Thomann, Jean-Sebastien ;
Przekora, Agata ;
Pawlat, Joanna ;
Canal, Cristina ;
Ginalska, Grazyna ;
Kwiatkowski, Michal ;
Duday, David ;
Hermans, Sophie .
CATALYSIS SCIENCE & TECHNOLOGY, 2021, 11 (04) :1430-1442
[5]   Density and rotational temperature measurements of the OH° and NO° radicals produced by a gliding arc in humid air [J].
Benstaali, B ;
Boubert, P ;
Cheron, BG ;
Addou, A ;
Brisset, JL .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2002, 22 (04) :553-571
[6]   Plasma-induced redox reactions synthesis of nanosized α-, γ- and δ-MnO2 catalysts for dye degradation [J].
Boyom-Tatchemo, Franck W. ;
Devred, Francois ;
Ndiffo-Yemeli, G. ;
Laminsi, Samuel ;
Gaigneaux, Eric M. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2020, 260
[7]   Chemical reactivity of discharges and temporal post-discharges in plasma treatment of aqueous media:: Examples of gliding discharge treated solutions [J].
Brisset, Jean-Louis ;
Moussa, David ;
Doubla, Avaly ;
Hnatiuc, Eugen ;
Hnatiuc, Bogdan ;
Youbi, Georges Kamgang ;
Herry, Jean-Marie ;
Naitali, Murielle ;
Bellon-Fontaine, Marie-Noelle .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2008, 47 (16) :5761-5781
[8]   Chemical Effects of Air Plasma Species on Aqueous Solutes in Direct and Delayed Exposure Modes: Discharge, Post-discharge and Plasma Activated Water [J].
Brisset, Jean-Louis ;
Pawlat, Joanna .
PLASMA CHEMISTRY AND PLASMA PROCESSING, 2016, 36 (02) :355-381
[9]   Plasma-liquid interactions: a review and roadmap [J].
Bruggeman, P. J. ;
Kushner, M. J. ;
Locke, B. R. ;
Gardeniers, J. G. E. ;
Graham, W. G. ;
Graves, D. B. ;
Hofman-Caris, R. C. H. M. ;
Maric, D. ;
Reid, J. P. ;
Ceriani, E. ;
Rivas, D. Fernandez ;
Foster, J. E. ;
Garrick, S. C. ;
Gorbanev, Y. ;
Hamaguchi, S. ;
Iza, F. ;
Jablonowski, H. ;
Klimova, E. ;
Kolb, J. ;
Krcma, F. ;
Lukes, P. ;
Machala, Z. ;
Marinov, I. ;
Mariotti, D. ;
Thagard, S. Mededovic ;
Minakata, D. ;
Neyts, E. C. ;
Pawlat, J. ;
Petrovic, Z. Lj ;
Pflieger, R. ;
Reuter, S. ;
Schram, D. C. ;
Schroter, S. ;
Shiraiwa, M. ;
Tarabova, B. ;
Tsai, P. A. ;
Verlet, J. R. R. ;
von Woedtke, T. ;
Wilson, K. R. ;
Yasui, K. ;
Zvereva, G. .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 2016, 25 (05)
[10]   Formation of reactive species in gliding arc discharges with liquid water [J].
Burlica, R ;
Kirkpatrick, MJ ;
Locke, BR .
JOURNAL OF ELECTROSTATICS, 2006, 64 (01) :35-43