4.4 Article

Orbitronics: Orbital currents in solids

Journal

EPL
Volume 135, Issue 3, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1209/0295-5075/ac2653

Keywords

-

Funding

  1. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [TRR173 - 268565370, TRR288 - 422213477]
  2. Global PhD Fellowship Program by National Research Foundation of Korea [2018H1A2A1060270]
  3. Samsung Science and Technology Foundation [BA-1501-51]
  4. Research Council of Norway through its Centers of Excellence funding scheme [262633]
  5. National Research Foundation of Korea [2018H1A2A1060270] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Orbital currents, composed of electrons with finite orbital angular momentum, can be electrically generated and transported in a wide range of materials despite the effect of orbital quenching in the ground state. These currents play a fundamental role in phenomena like spin Hall effect and valley Hall effect, and have potential applications in inducing magnetization dynamics. This field of study, known as orbitronics, explores the use of orbital degree of freedom as an information carrier in solid-state devices.
In solids, electronic Bloch states are formed by atomic orbitals. While it is natural to expect that orbital composition and information about Bloch states can be manipulated and transported, in analogy to the spin degree of freedom extensively studied in past decades, it has been assumed that orbital quenching by the crystal field prevents significant dynamics of orbital degrees of freedom. However, recent studies reveal that an orbital current, given by the flow of electrons with a finite orbital angular momentum, can be electrically generated and transported in wide classes of materials despite the effect of orbital quenching in the ground state. Orbital currents also play a fundamental role in the mechanisms of other transport phenomena such as spin Hall effect and valley Hall effect. Most importantly, it has been proposed that orbital currents can be used to induce magnetization dynamics, which is one of the most pivotal and explored aspects of magnetism. Here, we give an overview of recent progress and the current status of research on orbital currents. We review proposed physical mechanisms for generating orbital currents and discuss candidate materials where orbital currents are manifest. We review recent experiments on orbital current generation and transport and discuss various experimental methods to quantify this elusive object at the heart of orbitronics-an area which exploits the orbital degree of freedom as an information carrier in solid-state devices. Copyright (C) 2021 EPLA

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