Huynh Thi Phuong Thuy, Vo Van On, J. Guerrero-Sanchez, D. M. Hoat
{"title":"Functionalization of SnS2 monolayer towards spintronic applications by doping with FeXn (X = C and N; n = 1, 3, and 6) clusters","authors":"Huynh Thi Phuong Thuy, Vo Van On, J. Guerrero-Sanchez, D. M. Hoat","doi":"10.1007/s00339-025-08304-5","DOIUrl":null,"url":null,"abstract":"<div><p>In this work, doping with <span>\\(\\hbox {FeX}_{{n}}\\)</span> (X = C and N; n = 1, 3, and 6) is proposed as an efficient way to modify the electronic and magnetic properties of <span>\\(\\hbox {SnS}_{{2}}\\)</span> monolayer. Pristine monolayer is proven to be a two-dimensional (2D) nonmagnetic semiconductor material with indirect gap value of 1.58(2.37) eV obtained from PBE(HSE06)-based calculations. Doping with single Fe (<span>\\(\\hbox {Fe}_{{Sn}}\\)</span> system) and N (<span>\\(\\hbox {N}_{{S}}\\)</span> system) atoms produces total magnetic moments of 4.00 and 1.00 <span>\\(\\mu _{B}\\)</span>, respectively. <span>\\(\\hbox {Fe}_{{Sn}}\\)</span> is a 2D half-metallic material, while the magnetic semiconductor nature is obtained for <span>\\(\\hbox {N}_{{S}}\\)</span> system. In contrast, the substitution of C atom (<span>\\(\\hbox {C}_{{S}}\\)</span> system) causes a band gap reduction of the order of 66.46%, preserving the nonmagnetic nature of <span>\\(\\hbox {SnS}_{{2}}\\)</span> monolayer. Significant magnetism is also induced by doping with <span>\\(\\hbox {FeX}_{{n}}\\)</span> (<span>\\(\\hbox {D}_{{FeXn}}\\)</span> systems) clusters, where Fe and X atoms originate mainly the systems magnetism. In these cases, total magnetic moment depends on the spin coupling insides <span>\\(\\hbox {FeC}_{{n}}\\)</span> clusters, such that values between 0.00 and 8.00 <span>\\(\\mu _{B}\\)</span> are obtained. Interestingly, the feature-rich half-metallicity is found for <span>\\(\\hbox {D}_{{FeC3}}\\)</span>, <span>\\(\\hbox {D}_{{FeN3}}\\)</span>, and <span>\\(\\hbox {D}_{{FeN6}}\\)</span> systems. Moreover, <span>\\(\\hbox {D}_{{FeC}}\\)</span>, <span>\\(\\hbox {D}_{{FeN}}\\)</span>, and <span>\\(\\hbox {D}_{{FeC6}}\\)</span> systems are proven to be magnetic semiconductor 2D materials. Bader charge analysis asserts that Fe atom loses charge to transfer to the host monolayer, meanwhile C and N impurities attract charge from the host monolayer. Our study provides insights into the coeffects of Fe and X impurities into <span>\\(\\hbox {SnS}_{{2}}\\)</span> monolayer lattice, which may be useful for further functionalization of this 2D material towards spintronic applications.</p></div>","PeriodicalId":473,"journal":{"name":"Applied Physics A","volume":"131 3","pages":""},"PeriodicalIF":2.5000,"publicationDate":"2025-02-22","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Applied Physics A","FirstCategoryId":"4","ListUrlMain":"https://link.springer.com/article/10.1007/s00339-025-08304-5","RegionNum":4,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q3","JCRName":"MATERIALS SCIENCE, MULTIDISCIPLINARY","Score":null,"Total":0}
引用次数: 0
Abstract
In this work, doping with \(\hbox {FeX}_{{n}}\) (X = C and N; n = 1, 3, and 6) is proposed as an efficient way to modify the electronic and magnetic properties of \(\hbox {SnS}_{{2}}\) monolayer. Pristine monolayer is proven to be a two-dimensional (2D) nonmagnetic semiconductor material with indirect gap value of 1.58(2.37) eV obtained from PBE(HSE06)-based calculations. Doping with single Fe (\(\hbox {Fe}_{{Sn}}\) system) and N (\(\hbox {N}_{{S}}\) system) atoms produces total magnetic moments of 4.00 and 1.00 \(\mu _{B}\), respectively. \(\hbox {Fe}_{{Sn}}\) is a 2D half-metallic material, while the magnetic semiconductor nature is obtained for \(\hbox {N}_{{S}}\) system. In contrast, the substitution of C atom (\(\hbox {C}_{{S}}\) system) causes a band gap reduction of the order of 66.46%, preserving the nonmagnetic nature of \(\hbox {SnS}_{{2}}\) monolayer. Significant magnetism is also induced by doping with \(\hbox {FeX}_{{n}}\) (\(\hbox {D}_{{FeXn}}\) systems) clusters, where Fe and X atoms originate mainly the systems magnetism. In these cases, total magnetic moment depends on the spin coupling insides \(\hbox {FeC}_{{n}}\) clusters, such that values between 0.00 and 8.00 \(\mu _{B}\) are obtained. Interestingly, the feature-rich half-metallicity is found for \(\hbox {D}_{{FeC3}}\), \(\hbox {D}_{{FeN3}}\), and \(\hbox {D}_{{FeN6}}\) systems. Moreover, \(\hbox {D}_{{FeC}}\), \(\hbox {D}_{{FeN}}\), and \(\hbox {D}_{{FeC6}}\) systems are proven to be magnetic semiconductor 2D materials. Bader charge analysis asserts that Fe atom loses charge to transfer to the host monolayer, meanwhile C and N impurities attract charge from the host monolayer. Our study provides insights into the coeffects of Fe and X impurities into \(\hbox {SnS}_{{2}}\) monolayer lattice, which may be useful for further functionalization of this 2D material towards spintronic applications.
期刊介绍:
Applied Physics A publishes experimental and theoretical investigations in applied physics as regular articles, rapid communications, and invited papers. The distinguished 30-member Board of Editors reflects the interdisciplinary approach of the journal and ensures the highest quality of peer review.