Gate-tunable black phosphorus spin valve with nanosecond spin lifetimes
arXiv:1706.02076 · doi:10.1038/nphys4141
Abstract
Two-dimensional materials offer new opportunities for both fundamental science and technological applications, by exploiting the electron spin. While graphene is very promising for spin communication due to its extraordinary electron mobility, the lack of a band gap restricts its prospects for semiconducting spin devices such as spin diodes and bipolar spin transistors. The recent emergence of 2D semiconductors could help overcome this basic challenge. In this letter we report the first important step towards making 2D semiconductor spin devices. We have fabricated a spin valve based on ultra-thin (5 nm) semiconducting black phosphorus (bP), and established fundamental spin properties of this spin channel material which supports all electrical spin injection, transport, precession and detection up to room temperature (RT). Inserting a few layers of boron nitride between the ferromagnetic electrodes and bP alleviates the notorious conductivity mismatch problem and allows efficient electrical spin injection into an n-type bP. In the non-local spin valve geometry we measure Hanle spin precession and observe spin relaxation times as high as 4 ns, with spin relaxation lengths exceeding 6 um. Our experimental results are in a very good agreement with first-principles calculations and demonstrate that Elliott-Yafet spin relaxation mechanism is dominant. We also demonstrate that spin transport in ultra-thin bP depends strongly on the charge carrier concentration, and can be manipulated by the electric field effect.
References in corpus (18)
- Electric Field Effect in Atomically Thin Carbon Films
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Graphene Spintronics
- Superior mechanical flexibility of phosphorene and few-layer black phosphorus
- Electrical Detection of Spin Transport in Lateral Ferromagnet-Semiconductor Devices
- Electronic measurement and control of spin transport in Silicon
- High quality sandwiched black phosphorus heterostructure and its quantum oscillations
- Electrical characterization of fully encapsulated ultra thin black phosphorus-based heterostructures with graphene contacts
- Tunneling Spin Injection into Single Layer Graphene
- Tunneling Spin Injection into Single Layer Graphene (Supplementary Information)
- The Electronic Properties of Phosphorene/Graphene and Phosphorene/Hexagonal Boron Nitride Heterostructures
- Controlling the Schottky barrier at MoS2|metal contacts by inserting a BN monolayer
- Electrons and holes in phosphorene
- Valley Polarization by Spin Injection in a Light-Emitting van der Waals Heterojunction
- Spin injection and detection up to room temperature in Heusler~alloy/-GaAs spin valves
- Spin-orbit coupling and spin relaxation in phosphorene: Intrinsic versus extrinsic effects
Cited by in corpus (7)
- Van der Waals heterostructures for spintronics and opto-spintronics
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- van der Waals Bonded Co/h-BN Contacts to Ultrathin Black Phosphorus Devices
- Dimensionality and Anisotropicity Dependence of Radiative Recombination in Nanostructured Phosphorene
- Unconventional Strain-Dependent Conductance Oscillations in Pristine Phosphorene
- Proximity induced Colossal Conductivity Modulation in Phosphorene
- Carrier Drift Control of Spin Currents in Graphene-Based Spin-Current Demultiplexers