TY - JOUR
T1 - Programmable Locomotion Mechanisms of Nanowires with Semihard Magnetic Properties Near a Surface Boundary
AU - Jang, Bumjin
AU - Hong, Ayoung
AU - Alcantara, Carlos
AU - Chatzipirpiridis, George
AU - Martí, Xavier
AU - Pellicer, Eva
AU - Sort, Jordi
AU - Harduf, Yuval
AU - Or, Yizhar
AU - Nelson, Bradley J.
AU - Pané, Salvador
PY - 2019/1/23
Y1 - 2019/1/23
N2 - © 2018 American Chemical Society. We report on the simplest magnetic nanowire-based surface walker that is able to change its propulsion mechanism near a surface boundary as a function of the applied rotating magnetic field frequency. The nanowires are made of CoPt alloy with semihard magnetic properties synthesized by means of template-assisted galvanostatic electrodeposition. The semihard magnetic behavior of the nanowires allows for programming their alignment with an applied magnetic field as they can retain their magnetization direction after premagnetizing them. By engineering the macroscopic magnetization, the nanowires' speed and locomotion mechanism are set to tumbling, precession, or rolling depending on the frequency of an applied rotating magnetic field. Also, we present a mathematical analysis that predicts the translational speed of the nanowire near the surface, showing a very good agreement with experimental results. Interestingly, the maximal speed is obtained at an optimal frequency (∼10 Hz), which is far below the theoretical step-out frequency (∼345 Hz). Finally, vortices are found by tracking polystyrene microbeads, trapped around the CoPt nanowire, when they are propelled by precession and rolling motion.
AB - © 2018 American Chemical Society. We report on the simplest magnetic nanowire-based surface walker that is able to change its propulsion mechanism near a surface boundary as a function of the applied rotating magnetic field frequency. The nanowires are made of CoPt alloy with semihard magnetic properties synthesized by means of template-assisted galvanostatic electrodeposition. The semihard magnetic behavior of the nanowires allows for programming their alignment with an applied magnetic field as they can retain their magnetization direction after premagnetizing them. By engineering the macroscopic magnetization, the nanowires' speed and locomotion mechanism are set to tumbling, precession, or rolling depending on the frequency of an applied rotating magnetic field. Also, we present a mathematical analysis that predicts the translational speed of the nanowire near the surface, showing a very good agreement with experimental results. Interestingly, the maximal speed is obtained at an optimal frequency (∼10 Hz), which is far below the theoretical step-out frequency (∼345 Hz). Finally, vortices are found by tracking polystyrene microbeads, trapped around the CoPt nanowire, when they are propelled by precession and rolling motion.
KW - boundary effect
KW - CoPt nanowires
KW - motion transition
KW - nanopropulsion
KW - semihard magnetic properties
UR - http://www.mendeley.com/research/programmable-locomotion-mechanisms-nanowires-semihard-magnetic-properties-near-surface-boundary
UR - https://www.scopus.com/pages/publications/85060056839
U2 - 10.1021/acsami.8b16907
DO - 10.1021/acsami.8b16907
M3 - Article
C2 - 30588788
SN - 1944-8244
VL - 11
SP - 3214
EP - 3223
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
ER -