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                  <mods:namePart>Bryan, M. T.</mods:namePart>
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                  <mods:namePart>García-Torres, J.</mods:namePart>
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                  <mods:namePart>Martin, E. L.</mods:namePart>
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                  <mods:namePart>Winlove, C. P.</mods:namePart>
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                  <mods:namePart>Pagonabarraga Mora, Ignacio</mods:namePart>
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               <mods:name>
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                  <mods:namePart>Tierno, Pietro</mods:namePart>
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                  <mods:namePart>Sagués i Mestre, Francesc</mods:namePart>
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                  <mods:namePart>Ogrin, F. Y.</mods:namePart>
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                  <mods:dateIssued encoding="iso8601">2020-01-13T16:37:02Z2020-01-13T16:37:02Z2019-04-082020-01-13T16:37:02Z</mods:dateIssued>
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               <mods:abstract>Self-propulsion of magneto-elastic composite microswimmers is demonstrated under a uniaxial field at both the air-water and the water-substrate interfaces. The microswimmers are made of elastically linked magnetically hard Co-Ni-P and soft Co ferromagnets, fabricated using standard photolithography and electrodeposition. Swimming speed and direction are dependent on the field frequency and amplitude, reaching a maximum of 95.1 μm/s on the substrate surface. Fastest motion occurs at low frequencies via a spinning (air-water interface) or tumbling (water-substrate interface) mode that induces transient inertial motion. Higher frequencies result in low Reynolds number propagation at both interfaces via a rocking mode. Therefore, the same microswimmer can be operated as either a high or a low Reynolds number swimmer. Swimmer pairs agglomerate to form a faster superstructure that propels via spinning and rocking modes analogous to those seen in isolated swimmers. Microswimmer propulsion is driven by a combination of dipolar interactions between the Co and Co-Ni-P magnets and rotational torque due to the applied field, combined with elastic deformation and hydrodynamic interactions between different parts of the swimmer, in agreement with previous models.</mods:abstract>
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               <mods:accessCondition type="useAndReproduction">(c) American Physical Society, 2019 info:eu-repo/semantics/openAccess</mods:accessCondition>
               <mods:subject>
                  <mods:topic>Magnetisme</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Ferromagnetisme</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Fotolitografia</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Magnetism</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Ferromagnetism</mods:topic>
               </mods:subject>
               <mods:subject>
                  <mods:topic>Photolithography</mods:topic>
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               <mods:titleInfo>
                  <mods:title>Microscale magneto-elastic composite swimmers at the air-water and water-solid interfaces under a uniaxial field</mods:title>
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