Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference

Sugita, Y. ; Mitsuoka, K. ; Komuro, M. ; Hoshiya, H. ; Kozono, Y. ; Hanazono, M.

[S.l.] : American Institute of Physics (AIP)
Published 1991
ISSN:
1089-7550
Source:
AIP Digital Archive
Topics:
Physics
Notes:
Single-crystal Fe16N2 films have been grown epitaxially on Fe(001)/InGaAs(001) and InGaAs(001) substrates by molecular beam epitaxy (MBE). Saturation flux density Bs of Fe16N2 films has been demonstrated to be 2.8–3.0 T at room temperature, which is very close to the value obtained by Kim and Takahashi using polycrystalline evaporated Fe–N films. Temperature dependence of Bs has been measured. Bs changed with temperature reversibly up to 400 °C, while beyond 400 °C, Bs decreased irreversibly. X-ray diffraction showed that Fe16N2 crystal is stable up to 400 °C, while beyond 400 °C, Fe16N2 dissolves into Fe and Fe4N, and also some chemical reactions between Fe16N2 and the substrate occurs. This caused the temperature dependence of Bs mentioned above. From the temperature dependence of Bs up to 400 °C, the Curie temperature of Fe16N2 is estimated to be around 540 °C by using the Langevin function. The above mentioned Bs of 2.9 T at room temperature and 3.2 T at −268 °C corresponded to an average magnetic moment of 3.2μB per Fe atom and 3.5μB, respectively. These values of the magnetic moment of Fe atoms are literally giant, far beyond the Slater–Pauling curves. The origin of the giant magnetic moment has been discussed based on the calculation carried out by Sakuma. However, there was a significant disagreement between experimental values and calculated ones, so the origin remained to be clarified. Also, magneto-crystalline anisotropy of Fe16N2 films has been investigated.
Type of Medium:
Electronic Resource
URL:
_version_ 1798289662634098689
autor Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
autorsonst Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
book_url http://dx.doi.org/10.1063/1.350067
datenlieferant nat_lic_papers
hauptsatz hsatz_simple
identnr NLZ21863806X
issn 1089-7550
journal_name Journal of Applied Physics
materialart 1
notes Single-crystal Fe16N2 films have been grown epitaxially on Fe(001)/InGaAs(001) and InGaAs(001) substrates by molecular beam epitaxy (MBE). Saturation flux density Bs of Fe16N2 films has been demonstrated to be 2.8–3.0 T at room temperature, which is very close to the value obtained by Kim and Takahashi using polycrystalline evaporated Fe–N films. Temperature dependence of Bs has been measured. Bs changed with temperature reversibly up to 400 °C, while beyond 400 °C, Bs decreased irreversibly. X-ray diffraction showed that Fe16N2 crystal is stable up to 400 °C, while beyond 400 °C, Fe16N2 dissolves into Fe and Fe4N, and also some chemical reactions between Fe16N2 and the substrate occurs. This caused the temperature dependence of Bs mentioned above. From the temperature dependence of Bs up to 400 °C, the Curie temperature of Fe16N2 is estimated to be around 540 °C by using the Langevin function. The above mentioned Bs of 2.9 T at room temperature and 3.2 T at −268 °C corresponded to an average magnetic moment of 3.2μB per Fe atom and 3.5μB, respectively. These values of the magnetic moment of Fe atoms are literally giant, far beyond the Slater–Pauling curves. The origin of the giant magnetic moment has been discussed based on the calculation carried out by Sakuma. However, there was a significant disagreement between experimental values and calculated ones, so the origin remained to be clarified. Also, magneto-crystalline anisotropy of Fe16N2 films has been investigated.
package_name American Institute of Physics (AIP)
publikationsjahr_anzeige 1991
publikationsjahr_facette 1991
publikationsjahr_intervall 8009:1990-1994
publikationsjahr_sort 1991
publikationsort [S.l.]
publisher American Institute of Physics (AIP)
reference 70 (1991), S. 5977-5982
search_space articles
shingle_author_1 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
shingle_author_2 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
shingle_author_3 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
shingle_author_4 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
shingle_catch_all_1 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
Single-crystal Fe16N2 films have been grown epitaxially on Fe(001)/InGaAs(001) and InGaAs(001) substrates by molecular beam epitaxy (MBE). Saturation flux density Bs of Fe16N2 films has been demonstrated to be 2.8–3.0 T at room temperature, which is very close to the value obtained by Kim and Takahashi using polycrystalline evaporated Fe–N films. Temperature dependence of Bs has been measured. Bs changed with temperature reversibly up to 400 °C, while beyond 400 °C, Bs decreased irreversibly. X-ray diffraction showed that Fe16N2 crystal is stable up to 400 °C, while beyond 400 °C, Fe16N2 dissolves into Fe and Fe4N, and also some chemical reactions between Fe16N2 and the substrate occurs. This caused the temperature dependence of Bs mentioned above. From the temperature dependence of Bs up to 400 °C, the Curie temperature of Fe16N2 is estimated to be around 540 °C by using the Langevin function. The above mentioned Bs of 2.9 T at room temperature and 3.2 T at −268 °C corresponded to an average magnetic moment of 3.2μB per Fe atom and 3.5μB, respectively. These values of the magnetic moment of Fe atoms are literally giant, far beyond the Slater–Pauling curves. The origin of the giant magnetic moment has been discussed based on the calculation carried out by Sakuma. However, there was a significant disagreement between experimental values and calculated ones, so the origin remained to be clarified. Also, magneto-crystalline anisotropy of Fe16N2 films has been investigated.
1089-7550
10897550
American Institute of Physics (AIP)
shingle_catch_all_2 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
Single-crystal Fe16N2 films have been grown epitaxially on Fe(001)/InGaAs(001) and InGaAs(001) substrates by molecular beam epitaxy (MBE). Saturation flux density Bs of Fe16N2 films has been demonstrated to be 2.8–3.0 T at room temperature, which is very close to the value obtained by Kim and Takahashi using polycrystalline evaporated Fe–N films. Temperature dependence of Bs has been measured. Bs changed with temperature reversibly up to 400 °C, while beyond 400 °C, Bs decreased irreversibly. X-ray diffraction showed that Fe16N2 crystal is stable up to 400 °C, while beyond 400 °C, Fe16N2 dissolves into Fe and Fe4N, and also some chemical reactions between Fe16N2 and the substrate occurs. This caused the temperature dependence of Bs mentioned above. From the temperature dependence of Bs up to 400 °C, the Curie temperature of Fe16N2 is estimated to be around 540 °C by using the Langevin function. The above mentioned Bs of 2.9 T at room temperature and 3.2 T at −268 °C corresponded to an average magnetic moment of 3.2μB per Fe atom and 3.5μB, respectively. These values of the magnetic moment of Fe atoms are literally giant, far beyond the Slater–Pauling curves. The origin of the giant magnetic moment has been discussed based on the calculation carried out by Sakuma. However, there was a significant disagreement between experimental values and calculated ones, so the origin remained to be clarified. Also, magneto-crystalline anisotropy of Fe16N2 films has been investigated.
1089-7550
10897550
American Institute of Physics (AIP)
shingle_catch_all_3 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
Single-crystal Fe16N2 films have been grown epitaxially on Fe(001)/InGaAs(001) and InGaAs(001) substrates by molecular beam epitaxy (MBE). Saturation flux density Bs of Fe16N2 films has been demonstrated to be 2.8–3.0 T at room temperature, which is very close to the value obtained by Kim and Takahashi using polycrystalline evaporated Fe–N films. Temperature dependence of Bs has been measured. Bs changed with temperature reversibly up to 400 °C, while beyond 400 °C, Bs decreased irreversibly. X-ray diffraction showed that Fe16N2 crystal is stable up to 400 °C, while beyond 400 °C, Fe16N2 dissolves into Fe and Fe4N, and also some chemical reactions between Fe16N2 and the substrate occurs. This caused the temperature dependence of Bs mentioned above. From the temperature dependence of Bs up to 400 °C, the Curie temperature of Fe16N2 is estimated to be around 540 °C by using the Langevin function. The above mentioned Bs of 2.9 T at room temperature and 3.2 T at −268 °C corresponded to an average magnetic moment of 3.2μB per Fe atom and 3.5μB, respectively. These values of the magnetic moment of Fe atoms are literally giant, far beyond the Slater–Pauling curves. The origin of the giant magnetic moment has been discussed based on the calculation carried out by Sakuma. However, there was a significant disagreement between experimental values and calculated ones, so the origin remained to be clarified. Also, magneto-crystalline anisotropy of Fe16N2 films has been investigated.
1089-7550
10897550
American Institute of Physics (AIP)
shingle_catch_all_4 Sugita, Y.
Mitsuoka, K.
Komuro, M.
Hoshiya, H.
Kozono, Y.
Hanazono, M.
Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
Single-crystal Fe16N2 films have been grown epitaxially on Fe(001)/InGaAs(001) and InGaAs(001) substrates by molecular beam epitaxy (MBE). Saturation flux density Bs of Fe16N2 films has been demonstrated to be 2.8–3.0 T at room temperature, which is very close to the value obtained by Kim and Takahashi using polycrystalline evaporated Fe–N films. Temperature dependence of Bs has been measured. Bs changed with temperature reversibly up to 400 °C, while beyond 400 °C, Bs decreased irreversibly. X-ray diffraction showed that Fe16N2 crystal is stable up to 400 °C, while beyond 400 °C, Fe16N2 dissolves into Fe and Fe4N, and also some chemical reactions between Fe16N2 and the substrate occurs. This caused the temperature dependence of Bs mentioned above. From the temperature dependence of Bs up to 400 °C, the Curie temperature of Fe16N2 is estimated to be around 540 °C by using the Langevin function. The above mentioned Bs of 2.9 T at room temperature and 3.2 T at −268 °C corresponded to an average magnetic moment of 3.2μB per Fe atom and 3.5μB, respectively. These values of the magnetic moment of Fe atoms are literally giant, far beyond the Slater–Pauling curves. The origin of the giant magnetic moment has been discussed based on the calculation carried out by Sakuma. However, there was a significant disagreement between experimental values and calculated ones, so the origin remained to be clarified. Also, magneto-crystalline anisotropy of Fe16N2 films has been investigated.
1089-7550
10897550
American Institute of Physics (AIP)
shingle_title_1 Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
shingle_title_2 Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
shingle_title_3 Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
shingle_title_4 Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
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source_archive AIP Digital Archive
timestamp 2024-05-06T08:04:24.317Z
titel Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited) : The 5th Joint MMM−Intermag Conference
titel_suche Giant magnetic moment and other magnetic properties of epitaxially grown Fe16N2 single-crystal films (invited)
The 5th Joint MMM−Intermag Conference
topic U
uid nat_lic_papers_NLZ21863806X