{"id":169,"date":"2018-10-25T17:42:34","date_gmt":"2018-10-25T17:42:34","guid":{"rendered":"https:\/\/commons.mtholyoke.edu\/aidalalab\/?page_id=169"},"modified":"2023-08-06T01:52:53","modified_gmt":"2023-08-06T01:52:53","slug":"magnetism-nanostructures","status":"publish","type":"page","link":"https:\/\/commons.mtholyoke.edu\/aidalalab\/magnetism-nanostructures\/","title":{"rendered":"Earlier Work \u2013 Magnetic Nanostructures"},"content":{"rendered":"<p>Magnetism has been the basis for information storage for decades &#8211; first tape and disks and then hard drives.\u00a0 The spinning hard drive with its magnetic coating provides non-volatile and cheap data storage, though it cannot be quickly addressed like typical random access memory (RAM) in your computer\u00a0 (which requires power to hold its memory) and flash drive memory (which is more expensive).<\/p>\n<p>When the size of a magnetic structure is on the order of\u00a0 a typical domain, fascinating new states may result.\u00a0 These states are interesting both from a fundamental physics perspective, and may have applications in magnetic random access memory &#8211; data storage that can be quickly addressed and is non-volatile.\u00a0 Magnetic materials may offer additional advantages like a longer shelf life or being more resistant to radiation for applications in space.<\/p>\n<p>Magnetic force microscopy (MFM) offers one way of studying the states in magnetic nanostructures.\u00a0 Any force exerted on the tip allows us to generate an image.\u00a0 For MFM, we use a tip with a magnetic coating.\u00a0 After a first pass across the surface to determine the topography, we then raise the tip just above the surface of the sample.\u00a0 Magnetic fields from the sample will exert a force on the tip and change its motion, or rather, it will shift the resonance frequency of the tip proportional to the gradient of the magnetic field in the out-of-plane direction.\u00a0 \u00a0 Figure 1 shows a simulation of the MFM contrast from a dipole magnet aligned in the plane of the sample.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\" wp-image-789 alignleft\" src=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/MFM-300x111.png\" alt=\"\" width=\"354\" height=\"131\" srcset=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/MFM-300x111.png 300w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/MFM-768x283.png 768w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/MFM.png 982w\" sizes=\"auto, (max-width: 354px) 100vw, 354px\" \/><\/p>\n<p>&nbsp;<\/p>\n<p><em>Figure 1:\u00a0\u00a0For a dipole magnet that lies in the plane, the MFM contrast would be one bright side and one dark side.\u00a0 Above the center of the magnet, there would be no contrast because the gradient in z is small.\u00a0\u00a0<\/em><\/p>\n<p>&nbsp;<\/p>\n<p>With an atomic force microscope, we can not only image the state of the structure, but manipulate it as well.\u00a0 We do this by passing a current through a solid metal tip, generating a local, circular field that falls off in strength with increasing distance (Figure 2).\u00a0 This field is particularly well suited to study circularly symmetric nanostructures.\u00a0 Both rings and disks have a &#8220;vortex&#8221; state, in which the magnetic moments align circumferentially in the clockwise or counter-clockwise direction (Figure 3).\u00a0 A uniform applied field cannot select the rotation of the vortex, while the field from a current carrying wire at the center can.\u00a0 Simulations predict novel 360 degree domain wall states that are best understood topologically.<\/p>\n<p><em><img loading=\"lazy\" decoding=\"async\" class=\" wp-image-788 alignleft\" src=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/current-300x96.png\" alt=\"\" width=\"353\" height=\"113\" srcset=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/current-300x96.png 300w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/current-768x246.png 768w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/current-1024x328.png 1024w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/current.png 1425w\" sizes=\"auto, (max-width: 353px) 100vw, 353px\" \/><\/em><\/p>\n<p><em>\u00a0Figure 2:\u00a0 A current carrying wire, or the tip of an atomic force microscpe carrying current, creates a circular field that is proportional to 1\/r.\u00a0 IV curve showing 50mA of current flowing through the tip.\u00a0 We have passed over 100mA through the tip.\u00a0\u00a0<\/em><\/p>\n<p>&nbsp;<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\" wp-image-790 alignleft\" src=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/ring-states-300x108.png\" alt=\"\" width=\"356\" height=\"128\" srcset=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/ring-states-300x108.png 300w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/ring-states-768x276.png 768w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/ring-states-1024x368.png 1024w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/ring-states.png 1430w\" sizes=\"auto, (max-width: 356px) 100vw, 356px\" \/><\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<p><em>Figure 3: Common states of a thin ferromagnetic ring.\u00a0\u00a0<\/em><\/p>\n<p>&nbsp;<\/p>\n<p>By passing current through the tip of the AFM at the center of permalloy or cobalt rings, we can switch from the onion state to the vortex state, and from CW to CCW vortex states. The vortex state shows no contrast in MFM, because the field lines are contained within the structure.\u00a0 By using an asymmetric ring, we have confirmed direct vortex to vortex switching. We have also shown the switching of the circulation of the vortex in a disk without changing the polarization of the vortex core.<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"wp-image-792 alignleft\" src=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/OtoV-300x201.png\" alt=\"\" width=\"413\" height=\"277\" srcset=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/OtoV-300x201.png 300w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/OtoV-768x515.png 768w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/OtoV-1024x686.png 1024w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/OtoV.png 1398w\" sizes=\"auto, (max-width: 413px) 100vw, 413px\" \/><\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<p><em>Figure 4:\u00a0 We apply a clockwise circular field to two of the four rings in the image.\u00a0 The stronger field on the top right ring annihilates the domain walls and forms the vortex state (no contrast).\u00a0 The weaker field moves the domain walls towards one another, but does not annihilate.\u00a0 See Yang et al.,\u00a0APL, <strong>98<\/strong>, 242505(2011) for more information on this image.\u00a0\u00a0<\/em><\/p>\n<p>&nbsp;<\/p>\n<p>In rings of certain geometries, there is a metastable state where the two 180 degree domain walls (DWs) come together but do not annihilate, as the energy required to rotate the moments is too high.\u00a0 When two 180 DWs meet and stabilize, they form a 360 degree DW.\u00a0 (360 DWs can form in non-ring geometries, as well.)\u00a0 By thinking about the topology of the DWs in the ring, we can better understand their formation and annihilation.\u00a0 Our simulations predict the formation of multiple 360 DWs for certain geometries.<\/p>\n<p><em>\u00a0<img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-794 alignleft\" src=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/2360DW-300x201.png\" alt=\"\" width=\"300\" height=\"201\" srcset=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/2360DW-300x201.png 300w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/2360DW-768x513.png 768w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/2360DW-1024x685.png 1024w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/2360DW.png 1403w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/em><\/p>\n<p><em>Figure 5:\u00a0 If we look at the hysteresis curve beginning at the bottom left, the ring is in the CW vortex state.\u00a0 As the applied circular field decreases in magnitude and eventually becomes a CCW field, the ring will switch to the two 360DW state with a CCW vortext (purple point on graph).\u00a0 Further increasing the CCW field annihilates one of the 360 DWs (yellow point) and eventually annihilates the second, forming a perfect CCW vortex.\u00a0\u00a0<\/em><\/p>\n<p>&nbsp;<\/p>\n<p>&nbsp;<\/p>\n<p><img loading=\"lazy\" decoding=\"async\" class=\"size-medium wp-image-795 alignleft\" src=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/topology-300x212.png\" alt=\"\" width=\"300\" height=\"212\" srcset=\"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/topology-300x212.png 300w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/topology-768x544.png 768w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/topology-1024x725.png 1024w, https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-content\/uploads\/sites\/483\/2019\/06\/topology.png 1288w\" sizes=\"auto, (max-width: 300px) 100vw, 300px\" \/><\/p>\n<p>Figure 6:\u00a0 The two 360 DWs are not topologically identical.\u00a0 The top left one has a +1 winding number, which can be determined by following the rotation of the moments through the DW.\u00a0 As you follow the CCW vortex, the moments rotate inwards and in the CCW direction.\u00a0 In the bottom left DW , the moments rotate to the outside of the ring, rotating through a CW 360 degrees, giving it a winding number of =1.\u00a0 The +1 wall will annihilate at lower fields.<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Magnetism has been the basis for information storage for decades &#8211; first tape and disks and then hard drives.\u00a0 The spinning hard drive with its magnetic coating provides non-volatile and cheap data storage, though it cannot be quickly addressed like typical random access memory (RAM) in your computer\u00a0 (which requires power to hold its memory)&hellip;<\/p>\n","protected":false},"author":1030,"featured_media":675,"parent":0,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_monsterinsights_skip_tracking":false,"footnotes":""},"class_list":["post-169","page","type-page","status-publish","has-post-thumbnail","hentry"],"_links":{"self":[{"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/pages\/169","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/pages"}],"about":[{"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/types\/page"}],"author":[{"embeddable":true,"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/users\/1030"}],"replies":[{"embeddable":true,"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/comments?post=169"}],"version-history":[{"count":16,"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/pages\/169\/revisions"}],"predecessor-version":[{"id":882,"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/pages\/169\/revisions\/882"}],"wp:featuredmedia":[{"embeddable":true,"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/media\/675"}],"wp:attachment":[{"href":"https:\/\/commons.mtholyoke.edu\/aidalalab\/wp-json\/wp\/v2\/media?parent=169"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}