<?xml version='1.0' encoding='UTF-8'?><codeBook xmlns="ddi:codebook:2_5" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="ddi:codebook:2_5 https://ddialliance.org/Specification/DDI-Codebook/2.5/XMLSchema/codebook.xsd" version="2.5" xml:lang="en"><docDscr><citation><titlStmt><titl xml:lang="en">A Three-Dimensional Analysis of Magnetic Nanopattern Formation in FeRh Thin Films on MgO Substrates: Implications for Spintronic Devices</titl><IDNo agency="handle">hdl:21.15109/CONCORDA/LWU9RL</IDNo></titlStmt><distStmt><distrbtr source="archive">ARP</distrbtr><distDate>2022-04-05</distDate></distStmt><verStmt source="archive"><version date="2024-03-25" type="RELEASED">2</version></verStmt><biblCit>Merkel, Dániel Géza; Hegedűs, Gergő; Gracheva, Maria; Deák, András; Illés, Levente; Németh Attila; Maccari, Fernando; Radulov, Iliya; Major, Márton; Chumakov. Aleksandr I.; Bessas, Dimitros; Nagy, Dénes Lajos; Zolnai, Zsolt; Graning, Sára; Sájerman, Klára; Szilágyi, Edit; Lengyel, Attila, 2022, "A Three-Dimensional Analysis of Magnetic Nanopattern Formation in FeRh Thin Films on MgO Substrates: Implications for Spintronic Devices", https://hdl.handle.net/21.15109/CONCORDA/LWU9RL, ARP, V2, UNF:6:bgzs99u5U4GqdM9ySXKVTg== [fileUNF]</biblCit></citation></docDscr><stdyDscr><citation><titlStmt><titl xml:lang="en">A Three-Dimensional Analysis of Magnetic Nanopattern Formation in FeRh Thin Films on MgO Substrates: Implications for Spintronic Devices</titl><IDNo agency="handle">hdl:21.15109/CONCORDA/LWU9RL</IDNo></titlStmt><rspStmt><AuthEnty affiliation="(1) Wigner Research Centre for Physics, 2) Centre for Energy Research">Merkel, Dániel Géza</AuthEnty><AuthEnty affiliation="Wigner Research Centre for Physics">Hegedűs, Gergő</AuthEnty><AuthEnty affiliation="Institute of Chemistry, Eötvös Loránd University">Gracheva, Maria</AuthEnty><AuthEnty affiliation="Centre for Energy Research">Deák, András</AuthEnty><AuthEnty affiliation="Centre for Energy Research">Illés, Levente</AuthEnty><AuthEnty affiliation="Wigner Research Centre for Physics">Németh Attila</AuthEnty><AuthEnty affiliation="Technische Universität Darmstadt">Maccari, Fernando</AuthEnty><AuthEnty affiliation="Technische Universität Darmstadt">Radulov, Iliya</AuthEnty><AuthEnty affiliation="(1) Wigner Research Centre for Physics, 2)Technische Universität Darmstadt">Major, Márton</AuthEnty><AuthEnty affiliation="ESRF-The European Synchrotron">Chumakov. Aleksandr I.</AuthEnty><AuthEnty affiliation="ESRF-The European Synchrotron">Bessas, Dimitros</AuthEnty><AuthEnty affiliation="Wigner Research Centre for Physics">Nagy, Dénes Lajos</AuthEnty><AuthEnty affiliation="Centre for Energy Research">Zolnai, Zsolt</AuthEnty><AuthEnty affiliation="Institute of Physics, Eötvös Loránd University">Graning, Sára</AuthEnty><AuthEnty affiliation="Institute of Physics, Budapest University of Technology and Economics">Sájerman, Klára</AuthEnty><AuthEnty affiliation="Wigner Research Centre for Physics">Szilágyi, Edit</AuthEnty><AuthEnty affiliation="Wigner Research Centre for Physics">Lengyel, Attila</AuthEnty></rspStmt><prodStmt/><distStmt><distrbtr source="archive">ARP</distrbtr><contact affiliation="WIGNER FK" email="szilagyi.edit@wigner.hu">Szilágyi, Edit</contact><depositr>Szilágyi, Edit</depositr><depDate>2021-11-07</depDate></distStmt><holdings URI="https://hdl.handle.net/21.15109/CONCORDA/LWU9RL"/></citation><stdyInfo><subject><keyword xml:lang="en">Physics</keyword></subject><abstract date="2021-11-07" xml:lang="en">Magnetic nanopatterns were successfully created in FeRh thin film deposited on MgO (100) substrates. Silica and polystyrene spherical masks, nominally 500 and 1000 nm in diameter, respectively were applied on the surface of the sample in order to locally shadow the film against the effect of 110 keV energy neon-ion irradiation with fluences of 10&lt;sup>15&lt;/sup> and 10&lt;sup>16&lt;/sup> ions/cm&lt;sup>2&lt;/sup>. Such nanosphere-lithography technique allows for projecting the mask geometry on the magnetic structure of the FeRh film. Conversion-electron Mössbauer spectroscopy and magnetic force microscopy were used to determine the ferromagnetic ratio and the magnetic pattern in the samples, and nuclear resonance scattering of synchrotron radiation was applied to obtain the in-depth magnetic profile. From the results obtained, the possible three-dimensional (3D) structure of the created individual magnetic domains was also constructed. Overall, the great customizability of the presented nanosphere-lithography technique in FeRh thin film provides opportunities for developing cutting-edge spintronic applications.</abstract><sumDscr/></stdyInfo><method><dataColl><sources/></dataColl><anlyInfo/></method><dataAccs><setAvail/><useStmt/></dataAccs><othrStdyMat><relPubl><citation><titlStmt><titl>Dániel Géza Merkel*, Gergő Hegedűs, Maria Gracheva, András Deák, Levente Illés, Attila Németh, Fernando Maccari, Iliya Radulov, Márton Major, Aleksandr I. Chumakov, Dimitrios Bessas, Dénes Lajos Nagy, Zsolt Zolnai, Sára Graning, Klára Sájerman, Edit Szilágyi, and Attila Lengyel: 
A Three-Dimensional Analysis of Magnetic Nanopattern Formation in FeRh Thin Films on MgO Substrates: Implications for Spintronic Devices
ACS Appl. Nano Mater. 2022</titl><IDNo agency="doi">10.1021/acsanm.2c00511</IDNo></titlStmt><biblCit>Dániel Géza Merkel*, Gergő Hegedűs, Maria Gracheva, András Deák, Levente Illés, Attila Németh, Fernando Maccari, Iliya Radulov, Márton Major, Aleksandr I. Chumakov, Dimitrios Bessas, Dénes Lajos Nagy, Zsolt Zolnai, Sára Graning, Klára Sájerman, Edit Szilágyi, and Attila Lengyel: 
A Three-Dimensional Analysis of Magnetic Nanopattern Formation in FeRh Thin Films on MgO Substrates: Implications for Spintronic Devices
ACS Appl. 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