東京大学 · Physics and Astronomy
JORGE PUEBLA 교수의 연구실은 스핀트로닉스와 표면 물리학을 중심으로, 스핀과 음향파, 전자기기 간의 상호작용을 탐구합니다. 특히 표면 음향파(SAW)를 이용한 스핀 제어, 라슈바 스핀 오비탈 결합에 기반한 스핀-전하 변환, 그리고 고체의 표면에서의 스핀 누적 현상에 대한 실험적 관측과 이론적 기반 구축을 핵심 연구 방향으로 삼고 있습니다. 또한, 비자성 금속/산화물 인터페이스에서의 고온에서의 스핀 생성 및 에너지 효율적인 정보 처리 메커니즘 개발에도 기여하고 있습니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Abstract The current data revolution has, in part, been enabled by decades of research into magnetism and spin phenomena. For example, milestones such as the observation of giant magnetoresistance, and the resulting development of the spin-valve read head, continue to motivate device research. However, the ever-growing need for higher data processing speeds and larger data storage capabilities has caused a significant increase in energy consumption and environmental concerns. Ongoing research an
A fundamental form of magnon-phonon interaction is an intrinsic property of magnetic materials, the "magnetoelastic coupling." This form of interaction has been the basis for describing magnetostrictive materials and their applications, where strain induces changes of internal magnetic fields. Different from the magnetoelastic coupling, more than 40 years ago, it was proposed that surface acoustic waves may induce surface magnons via rotational motion of the lattice in anisotropic magnets. Howev
Surface acoustic waves (SAWs) are elastic waves propagating on the surface of solids with the amplitude decaying into the solid. The well-established fabrication of compact SAW devices, together with well-defined resonance frequencies, places SAWs as an attractive route to manipulate the magnetization states in spintronics, all of which is made possible by the magnetostriction and magnetoelastic effects. Here, we review the basic characteristics of SAW devices and their interaction out-of-resona
We report the direct observation of uniform in-plane spin accumulation at room temperature by magneto optical Kerr effect, at the interface formed between nonmagnetic metal (Cu, Ag) and oxide (Bi2O3). Recent reports show spin to charge conversion at these interfaces suggesting the presence of Rashba like spin orbit coupling (SOC). The formation of spin accumulation is the result of current induced spin polarization at our interfaces (direct Rashba–Edelstein effect), without external magnetic fie
We study experimentally the dependence of dynamic nuclear spin polarization on the power of nonresonant optical excitation in two types of individual neutral semiconductor quantum dots: InGaAs/GaAs and GaAs/AlGaAs. We show that the mechanism of nuclear spin pumping via second-order recombination of optically forbidden (``dark'') exciton states recently reported in InP/GaInP quantum dots [E. A. Chekhovich et al., Phys. Rev. B 83, 125318 (2011)] is relevant for material systems considered in this
At interfaces with inversion symmetry breaking, the Rashba effect couples the motion of the electrons to their spin; as a result, a spin charge interconversion mechanism can occur. These interconversion mechanisms commonly exploit Rashba spin splitting at the Fermi level by spin pumping or spin torque ferromagnetic resonance. Here, we report evidence of significant photoinduced spin-to-charge conversion via Rashba spin splitting in an unoccupied state above the Fermi level at the Cu(111)/α-Bi_{2
Abstract Spinconversion is a collective concept underlying spin mediated energy interconversion among electricity, light, sound, vibration, and heat. Particularly in the last couple of decades, the increasing research efforts result in enhancements of spinconversion efficiencies and the discovery of novel spinconversion mechanisms. Here, an overview of the progress in spinconversion is layed out. In particular, the involvement of band crossings at which quasiparticles are formed with consequence
Abstract Under an external magnetic field, surface acoustic waves (SAWs) propagating onto a ferromagnetic thin film can excite ferromagnetic resonance (FMR). The magnetization precessional motion in resonance pumps spin current into the Rashba interface across an adjacent non‐magnetic layer, which can be converted to charge current via the inverse Edelstein effect (IEE). Here, the SAW‐driven FMR and the IEE voltage signals under in‐ and out‐of‐plane external magnetic fields are reported. When th
Spintronics Recent progress in spinconversion research, with particular focus on studies involving band crossing, is reviewed by Jorge Puebla, Yoshichika Otani, and co-workers in article number 2100398. If the coupling strength of quasiparticles is enhanced, hybrid quasiparticles are formed and band anticrossings appear, with repercussions in other research fields beyond spinconversion, such as quantum information.