Magnetic data storage and magnetically actuated devices are conventionally controlled by magnetic fields generated using electric currents. This involves significant power dissipation by Joule heating effect. To optimize energy efficiency, manipulation of magnetic information with lower magnetic fields (i.e., lower electric currents) is desirable. This can be accomplished by reducing the coercivity of the actuated material. Here, a drastic reduction of coercivity is observed at room temperature in thick (≈600 nm), nanoporous, electrodeposited Cu-Ni films by simply subjecting them to the action of an electric field. The effect is due to voltage-induced changes in the magnetic anisotropy. The large surface-area-to-volume ratio and the ultrana...
Voltage control of magnetism via electric-field-driven ion migration (magneto-ionics) has generated ...
The magnetic properties of mesoporous cobalt ferrite films can be largely tuned by the application o...
Voltage-driven manipulation of magnetism in electrodeposited 200 nm thick nanoporous single-phase so...
Magnetic data storage and magnetically actuated devices are conventionally controlled by magnetic fi...
Fe-Cu films with pseudo-ordered, hierarchical porosity are prepared by a simple, two-step procedure ...
Large magnetoelectric effects are observed in as-sputtered (nanoparticulate-like) and electrochemica...
Voltage-driven manipulation of magnetism in electrodeposited 200 nm thick nanoporous single-phase so...
A synergetic approach to enhance magnetoelectric effects (i.e., control of magnetism with voltage) a...
Large magnetoelectric effects are observed in as-sputtered (nanoparticulate-like) and electrochemica...
Fe–Cu films with pseudo-ordered, hierarchical porosity are prepared by a simple, two-step procedure ...
Altres ajuts: French National Research Agency (ANR) grant agreement No ANR-15-CE24-0015-01.Voltage c...
Manipulation of the magnetic behavior of materials with voltage (i.e., magnetoelectric actuation) ha...
This presentation covers different types of mechanisms and nanoporous materials whose magnetic prope...
International audienceThe magnetic properties of mesoporous cobalt ferrite films can be largely tune...
San Diego, California, United StatesInternational audienceUntil now, spintronics devices have relied...
Voltage control of magnetism via electric-field-driven ion migration (magneto-ionics) has generated ...
The magnetic properties of mesoporous cobalt ferrite films can be largely tuned by the application o...
Voltage-driven manipulation of magnetism in electrodeposited 200 nm thick nanoporous single-phase so...
Magnetic data storage and magnetically actuated devices are conventionally controlled by magnetic fi...
Fe-Cu films with pseudo-ordered, hierarchical porosity are prepared by a simple, two-step procedure ...
Large magnetoelectric effects are observed in as-sputtered (nanoparticulate-like) and electrochemica...
Voltage-driven manipulation of magnetism in electrodeposited 200 nm thick nanoporous single-phase so...
A synergetic approach to enhance magnetoelectric effects (i.e., control of magnetism with voltage) a...
Large magnetoelectric effects are observed in as-sputtered (nanoparticulate-like) and electrochemica...
Fe–Cu films with pseudo-ordered, hierarchical porosity are prepared by a simple, two-step procedure ...
Altres ajuts: French National Research Agency (ANR) grant agreement No ANR-15-CE24-0015-01.Voltage c...
Manipulation of the magnetic behavior of materials with voltage (i.e., magnetoelectric actuation) ha...
This presentation covers different types of mechanisms and nanoporous materials whose magnetic prope...
International audienceThe magnetic properties of mesoporous cobalt ferrite films can be largely tune...
San Diego, California, United StatesInternational audienceUntil now, spintronics devices have relied...
Voltage control of magnetism via electric-field-driven ion migration (magneto-ionics) has generated ...
The magnetic properties of mesoporous cobalt ferrite films can be largely tuned by the application o...
Voltage-driven manipulation of magnetism in electrodeposited 200 nm thick nanoporous single-phase so...