Publications by authors named "Beongki Cho"

Article Synopsis
  • - The paper focuses on current-induced magnetic switching using spin-orbit torque, highlighting its significance in both academic and industry settings.
  • - Most previous research has complicated the magnetic structures with symmetry breakers, while this study presents a simpler design using a multilayer structure with easy-to-manage parameters.
  • - The findings suggest that balancing magnetic anisotropy and interlayer coupling is key to achieving effective magnetic switching, paving the way for advancements in spin-based electronics.
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Article Synopsis
  • Magnetic anisotropy has a strong impact on how well materials exhibit the magnetocaloric effect, which can be significant in cooling applications.
  • The study focused on NdAlGe single crystal, revealing notable anisotropic magnetization properties, including a stable antiferromagnetic transition at 6 K and a metamagnetic spin reorientation at lower temperatures.
  • The magnetocaloric effect was substantial, with a large negative entropy change of -13.80 J/kg K at 5.5 K under a magnetic field, as well as an inverse effect observed at 6 K, indicating NdAlGe's potential in developing innovative magnetocaloric refrigeration systems.
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Introduction: Iron oxide magnetic nanoparticles (IONPs) have attracted considerable attention for various biomedical applications owing to their ease of synthesis, strong magnetic properties, and biocompatibility. In particular, IONPs can generate heat under an alternating magnetic field, the effects of which have been extensively studied for magnetic hyperthermia therapy. However, the development of IONPs with high heating efficiency, biocompatibility, and colloidal stability in physiological environments is still required for their safe and effective application in biomedical fields.

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The effect of magnetic fields on the optical output power of flip-chip light-emitting diodes (LEDs) with InGaN/GaN multiple quantum wells (MQWs) was investigated. Films and circular disks comprising ferromagnetic cobalt/platinum (Co/Pt) multilayers were deposited on a p-ohmic reflector to apply magnetic fields in the direction perpendicular to the MQWs of the LEDs. At an injection current of 20 mA, the ferromagnetic Co/Pt multilayer film increased the optical output power of the LED by 20% compared to an LED without a ferromagnetic Co/Pt multilayer.

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We investigate the effect of a magnetic field on red, green, and blue CdSe/ZnS quantum dot light-emitting diodes (QDLEDs). Circular multilayer ferromagnetic cobalt/platinum (Co/Pt) disks are deposited on a MgF layer covering an Al electrode, and a perpendicular magnetic field is applied to the QDs in the active layer. Carriers injected into the active layer are then trapped and efficiently recombined inside the QDs because of strong carrier localization caused by the perpendicular magnetic field.

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The spin-torque driven dynamics of antiferromagnets with Dzyaloshinskii-Moriya interaction (DMI) were investigated based on the Landau-Lifshitz-Gilbert-Slonczewski equation with antiferromagnetic and ferromagnetic order parameters (l and m, respectively). We demonstrate that antiferromagnets including DMI can be described by a 2-dimensional pendulum model of l. Because m is coupled with l, together with DMI and exchange energy, close examination of m provides fundamental understanding of its dynamics in linear and nonlinear regimes.

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Strong spin-orbit interaction and time-reversal symmetry in topological insulators generate novel quantum states called topological surface states. Their study provides unique opportunities to explore exotic phenomena such as spin Hall effects and topological phase transitions, relevant to the development of quantum devices for spintronics and quantum computation. Although ultrahigh-vacuum surface probes can identify individual topological surface states, standard electrical and optical experiments have so far been hampered by the interference of bulk and quantum well states.

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