HEIndividual fellowship2023–2025

SORTIR · Spin-obit torque heterostructures based on topological insulators and 2D materials

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2023-04-01 → 2025-03-31
EU contribution
€165,313
Participants
2
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Results in brief

Spin-obit torque heterostructures based on topological insulators and 2D materials

Due to the massive increase of data generation, data storage is a challenge in our society. Spintronics plays a key role in this field, targeting non volatility and low energy consumption. Among the solutions offered by spintronics, the magnetic random access memory (MRAM) is the only non-volatile memory allowing high endurance and very fast write operation. So far, it is considered to be the best option for non-volatile data storage operations. The main component of the the MRAM, is the magnetic tunnel junction (MTJ) that is made of two ferromagnetic layers (FM) separated by an insulator. One of the FM stores the information with the direction of its magnetization, and the other FM is fixed and used as a reference to read the first FM. In order to change the magnetization of the first FM and therefore, write information, it is convenient to use electrical current and this is the core of MRAM technology. In industrial MRAMs, a charge current is converted into a spin current by the first FM, that will exert a torque in the second FM. This phenomenon is known as spin-transfer torque (STT). If it is strong enough, this can lead to the switching of the second FM magnetization. The issue is that large current densities are required for this process to occur, resulting in damaging the insulator and affecting the functioning of the device. To solve this problem, the charge to spin conversion can be achieved differently: using a high spin orbit coupling material adjacent to the first FM. With this method, the current generating the torques flows along the film stack instead of across. The result is a more reliable MRAM with a better endurance. In parallel of this important improvements, the field of two-dimensional materials (2DMs) has led to new perspectives for downscaling and improving MRAM performances. Their 2D nature and their very weak van-der-Waals interaction between 2D layers, allows the creation of ultimately thin stacks with sharp interfaces, avoiding the usual problem of roughness and inter-diffusion that is at the origin of the degradation of the spin properties of usual materials. Another benefit of 2D materials is their variety covering a broad range of relevant properties for spintronics. Among them, graphene shows a very low SOC resulting in long spin diffusion length3, which is of great interest to avoid spin depolarization. The 2DM family also includes high-SOC materials, known as 2D-spin-orbit materials (2D-SOM), which are relevant for charge-to-spin conversion (CSI), such as the transition metal dichalcogenides (TMDCs) and broadly studied topological insulators (TIs). Importantly, the host group pioneered the study of proximity effects between graphene and TMDCs and demonstrated large CSI in these stacks4, highlighting the possibility of combining graphene with 2D-SOMs to achieve large SOTs. Furthermore, unlike conventional heavy metals, low-symmetry TMDCs offer the possibility to generate out-of-plane damping SOTs5, which are required for continuing down-scaling1. On the other hand, TIs exhibit conducting topological surface states (TSSs) where the spin of the carriers are locked to their momentum. This results in a highly-efficient generation of spin currents with a polarization that depends on the direction of the charge current. The host group recently demonstrated the tuning of SOTs in TI heterostructures when inserting spacers between the TI and a conventional FM. Despite the advances, there are still open questions about the nature of the spin generation and how to enhance it. Moreover, recent material research has led to the discovery of 2D-FMs exhibiting a Curie temperature close or exceeding room temperature, making them promising candidates for practical nanoscale spintronics devices. In the SORTIR project, the researcher aimed to increase the performances of usual MRAM devices by using advanced TI/graphene heterostructures.

Data: CORDIS, © European Union

Project objective

In recent years, spintronics has seen a substantial increase on application in data storage devices, targeting low-energy cost and non-volatility. Indeed, the magnetic random access memory (MRAM) is the only non-volatile memory capable of high-density, high-endurance and fast-write operation and is considered as the best candidate for embedded non-volatile applications. In this technology, the information is stored by the direction of the magnetization of ferromagnets. The most scalable and efficient way to control the magnetization is the use of spin currents, which exert a torque on it and can fully reverse its direction. The most common spin-sources investigated for spin-orbit-torque MRAM (SOT-MRAM) are heavy metals such as Pt, W or Ta, which convert an electrical current in a spin current by means of, for example, the spin Hall effect arising from their strong spin-orbit coupling. The reported SOT efficiencies indeed allow current-induced magnetization switching, however, the current densities required are still too large for practical implementations.Steady progress in two-dimensional materials (2DMs) offers new perspectives for downscaling and improving MRAM performance. Their 2D nature and weak van-der-Waals interaction between layers enables to create atomically thin stacks with sharp interfaces, circumventing roughness and inter-diffusion, which significantly degrade the spin properties of conventional materials. Among them, topological insulators and transition metal dichalcogenides are expected to be very efficient spin-sources that could significantly enhance the SOTs in comparison to conventional bulk materials. The SORTIR project therefore aims at using the unique properties of 2DMs to unleash their potential for high SOT efficiencies, targeting both low-consumption and high density for data storage.

Original text from CORDIS.

Participants

  • FUNDACIO INSTITUT CATALA DE NANOCIENCIA I NANOTECNOLOGIA · BELLATERRA (BARCELONA)CoordinatorSpain
  • CENTRE NATIONAL DE LA RECHERCHE SCIENTIFIQUE CNRS · ParisFrance

Links

Data: CORDIS, © European Union