Anisotropic microwave propagation in a reconfigurable chiral spin soliton lattice
We investigated microwave propagation in the chiral spin soliton lattice (CSL) phase of micrometer-sized crystals of the monoaxial chiral helimagnet CrNb3S6. An advantage of the CSL is that its periodicity can be reconfigured over a macroscopic length scale by means of an external magnetic field. Us...
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Veröffentlicht in: | Physical review. B 2021-11, Vol.104 (17), Article 174420 |
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creator | Shimamoto, Y. Goncalves, F. J. T. Sogo, T. Kousaka, Y. Togawa, Y. |
description | We investigated microwave propagation in the chiral spin soliton lattice (CSL) phase of micrometer-sized crystals of the monoaxial chiral helimagnet CrNb3S6. An advantage of the CSL is that its periodicity can be reconfigured over a macroscopic length scale by means of an external magnetic field. Using a two-antenna microwave spectroscopy technique, we measured the anisotropic response of the transmitted microwaves via the spin dynamics of the CSL. When propagating along the direction parallel to the helical axis, the microwave amplitude increased up to a factor of twenty with decreasing the number of chiral soliton kinks. When the propagation direction was rotated by 90 degrees with regards to the helical axis, the microwave amplitude increased by one order of magnitude upon formation of the chiral helimagnetic order in the vicinity of zero magnetic field, exceeding that of the ferromagnetic phase above the critical field. Our findings open a novel route for controlling the characteristics of microwave propagation using noncollinear spin textures. |
doi_str_mv | 10.1103/PhysRevB.104.174420 |
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J. T. ; Sogo, T. ; Kousaka, Y. ; Togawa, Y.</creator><creatorcontrib>Shimamoto, Y. ; Goncalves, F. J. T. ; Sogo, T. ; Kousaka, Y. ; Togawa, Y.</creatorcontrib><description>We investigated microwave propagation in the chiral spin soliton lattice (CSL) phase of micrometer-sized crystals of the monoaxial chiral helimagnet CrNb3S6. An advantage of the CSL is that its periodicity can be reconfigured over a macroscopic length scale by means of an external magnetic field. Using a two-antenna microwave spectroscopy technique, we measured the anisotropic response of the transmitted microwaves via the spin dynamics of the CSL. When propagating along the direction parallel to the helical axis, the microwave amplitude increased up to a factor of twenty with decreasing the number of chiral soliton kinks. When the propagation direction was rotated by 90 degrees with regards to the helical axis, the microwave amplitude increased by one order of magnitude upon formation of the chiral helimagnetic order in the vicinity of zero magnetic field, exceeding that of the ferromagnetic phase above the critical field. Our findings open a novel route for controlling the characteristics of microwave propagation using noncollinear spin textures.</description><identifier>ISSN: 2469-9950</identifier><identifier>EISSN: 2469-9969</identifier><identifier>DOI: 10.1103/PhysRevB.104.174420</identifier><language>eng</language><publisher>COLLEGE PK: Amer Physical Soc</publisher><subject>Materials Science ; Materials Science, Multidisciplinary ; Physical Sciences ; Physics ; Physics, Applied ; Physics, Condensed Matter ; Science & Technology ; Technology</subject><ispartof>Physical review. 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When the propagation direction was rotated by 90 degrees with regards to the helical axis, the microwave amplitude increased by one order of magnitude upon formation of the chiral helimagnetic order in the vicinity of zero magnetic field, exceeding that of the ferromagnetic phase above the critical field. Our findings open a novel route for controlling the characteristics of microwave propagation using noncollinear spin textures.</description><subject>Materials Science</subject><subject>Materials Science, Multidisciplinary</subject><subject>Physical Sciences</subject><subject>Physics</subject><subject>Physics, Applied</subject><subject>Physics, Condensed Matter</subject><subject>Science & Technology</subject><subject>Technology</subject><issn>2469-9950</issn><issn>2469-9969</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><sourceid>HGBXW</sourceid><recordid>eNqNkMtOwzAQRS0EElXpF7DJHqWMHduJlyXiJVXiIVhHtuu0Rmkc2W6r_j0uha7ZzIxm7r0aHYSuMUwxhuL2dbUP72Z7N8VAp7iklMAZGhHKRS4EF-enmcElmoTwBQCYgyhBjNDbrLfBRe8Gq7O11d7t5NZkQ1rIpYzW9ZntM5l5o13f2uXGS9WZTK-sl10WhnQMrrMx6ToZo9XmCl20sgtm8tvH6PPh_qN-yucvj8_1bJ5rQkXMGeZaAwPODOeUVsYo0EUFiilliMaack3LdoFbpdhCkVQNpy2joCspKCnGqDjmpp9D8KZtBm_X0u8bDM0BTPMHJi1ocwSTXDdH184o1wZtTa_NyZnIlISkcAyHMamr_6trG3-A1W7Tx-Ib_-h7Aw</recordid><startdate>20211101</startdate><enddate>20211101</enddate><creator>Shimamoto, Y.</creator><creator>Goncalves, F. 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B</jtitle><stitle>PHYS REV B</stitle><date>2021-11-01</date><risdate>2021</risdate><volume>104</volume><issue>17</issue><artnum>174420</artnum><issn>2469-9950</issn><eissn>2469-9969</eissn><abstract>We investigated microwave propagation in the chiral spin soliton lattice (CSL) phase of micrometer-sized crystals of the monoaxial chiral helimagnet CrNb3S6. An advantage of the CSL is that its periodicity can be reconfigured over a macroscopic length scale by means of an external magnetic field. Using a two-antenna microwave spectroscopy technique, we measured the anisotropic response of the transmitted microwaves via the spin dynamics of the CSL. When propagating along the direction parallel to the helical axis, the microwave amplitude increased up to a factor of twenty with decreasing the number of chiral soliton kinks. When the propagation direction was rotated by 90 degrees with regards to the helical axis, the microwave amplitude increased by one order of magnitude upon formation of the chiral helimagnetic order in the vicinity of zero magnetic field, exceeding that of the ferromagnetic phase above the critical field. Our findings open a novel route for controlling the characteristics of microwave propagation using noncollinear spin textures.</abstract><cop>COLLEGE PK</cop><pub>Amer Physical Soc</pub><doi>10.1103/PhysRevB.104.174420</doi><tpages>7</tpages><orcidid>https://orcid.org/0000-0002-8673-0260</orcidid><orcidid>https://orcid.org/0000-0002-2799-7846</orcidid></addata></record> |
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subjects | Materials Science Materials Science, Multidisciplinary Physical Sciences Physics Physics, Applied Physics, Condensed Matter Science & Technology Technology |
title | Anisotropic microwave propagation in a reconfigurable chiral spin soliton lattice |
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