| Literature DB >> 30370615 |
Xinbo Wang1,2, Liang Cheng1, Dapeng Zhu3, Yang Wu3, Mengji Chen3, Yi Wang3, Daming Zhao1, Chris B Boothroyd4, Yeng Ming Lam4, Jian-Xin Zhu5, Marco Battiato1,6, Justin C W Song1,7, Hyunsoo Yang3, Elbert E M Chia1.
Abstract
Strong spin-orbit coupling, resulting in the formation of spin-momentum-locked surface states, endows topological insulators with superior spin-to-charge conversion characteristics, though the dynamics that govern it have remained elusive. Here, an all-optical method is presented, which enables unprecedented tracking of the ultrafast dynamics of spin-to-charge conversion in a prototypical topological insulator Bi2 Se3 /ferromagnetic Co heterostructure, down to the sub-picosecond timescale. Compared to pure Bi2 Se3 or Co, a giant terahertz emission is observed in the heterostructure that originates from spin-to-charge conversion, in which the topological surface states play a crucial role. A 0.12 ps timescale is identified that sets a technological speed limit of spin-to-charge conversion processes in topological insulators. In addition, it is shown that the spin-to-charge conversion efficiency is temperature independent in Bi2 Se3 as expected from the nature of the surface states, paving the way for designing next-generation high-speed optospintronic devices based on topological insulators at room temperature.Entities:
Keywords: spin-to-charge conversion; spintronics; surface states; terahertz emission spectroscopy; topological insulators
Year: 2018 PMID: 30370615 DOI: 10.1002/adma.201802356
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849