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We theoretically study the profile of a supercurrent in two-dimensional Josephson junctions with Rashba-Dresselhaus spin-orbit interaction (RDSOI) in the presence of a Zeeman field. Through investigating self-biased supercurrent (so called $varphi_0$-Josephson state), we obtain explicit expressions for the functionality of the $varphi_0$ state with respect to RDSOI parameters ($alpha,beta$) and in-plane Zeeman field components ($h_x,h_y$). Our findings reveal that, when the chemical potential ($mu$) is high enough compared to the energy gap ($Delta$) in superconducting electrodes, i.e., $mu gg Delta$, RSOI and DSOI with equal strengths ($|alpha|=|beta|$) cause vanishing $varphi_0$ state independent of magnetization and the type of RDSOI. A Zeeman field with unequal components, i.e., $|h_x| eq |h_y|$, however, can counteract and nullify the destructive impact of equal-strength RDSOIs (for one type only), where $musimDelta$, although $|h_x|= |h_y|$ can still eliminate the $varphi_0$ state. Remarkably, in the $musimDelta$ limit, the $varphi_0$ state is proportional to the multiplication of both components of an in-plane Zeeman field, i.e., $h_xh_y$, which is absent in the $mu gg Delta$ limit. Furthermore, our results of critical supercurrents demonstrate that the persistent spin helices can be revealed in a high enough chemical potential regime $mugg Delta$, while an opposite regime, i.e., $musimDelta$, introduces an adverse effect. In the ballistic regime, the maximum of the critical supercurrent occurs at $|alpha|=|beta|$ and the Zeeman field can boost this feature. The presence of disorder and nonmagnetic impurities change this picture drastically so the minimum of the critical supercurrent occurs at and around the symmetry lines $|alpha|=|beta|$.
We study the lifetime of the persistent spin helix in semiconductor quantum wells with equal Rashba- and linear Dresselhaus spin-orbit interactions. In order to address the temperature dependence of the relevant spin relaxation mechanisms we derive a
We study the phase diagram of the interacting two-dimensional electron gas (2DEG) with equal Rashba and Dresselhaus spin-orbit coupling, which for weak coupling gives rise to the well-known persistent spin-helix phase. We construct the full Hartree-F
We derive a spin diffusion equation for a spin-orbit coupled two-dimensional electron gas including the Hartree-Fock field resulting from 1st order electron-electron interactions. We find that the lifetime of the persistent spin helix, which emerges
We present muon spin lattice relaxation measurements in the V15 spin 1/2 molecular nano-magnet. We find that the relaxation rate in low magnetic fields (<5 kG) is temperature independent below ~10 K, implying that the molecular spin is dynamically fl
In layered semiconductors with spin-orbit interaction (SOI) a persistent spin helix (PSH) state with suppressed spin relaxation is expected if the strengths of the Rashba and Dresselhaus SOI terms, alpha and beta, are equal. Here we demonstrate gate