Enhancing and controlling valley magnetic response in MoS2/WS2 heterostructures by all-optical route

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作者
Jing Zhang
Luojun Du
Shun Feng
Run-Wu Zhang
Bingchen Cao
Chenji Zou
Yu Chen
Mengzhou Liao
Baile Zhang
Shengyuan A. Yang
Guangyu Zhang
Ting Yu
机构
[1] Division of Physics and Applied Physics,
[2] School of Physical and Mathematical Sciences,undefined
[3] Nanyang Technological University,undefined
[4] CAS Key Laboratory of Nanoscale Physics and Devices,undefined
[5] Institute of Physics,undefined
[6] Chinese Academy of Sciences,undefined
[7] Department of Electronics and Nanoengineering,undefined
[8] Aalto University,undefined
[9] Research Laboratory for Quantum Materials,undefined
[10] Singapore University of Technology and Design,undefined
[11] Key Lab of advanced optoelectronic quantum architecture and measurement (MOE),undefined
[12] Beijing Key Lab of Nanophotonics & ultrafine Optoelectronic Systems,undefined
[13] and School of Physics,undefined
[14] Beijing Institute of Technology,undefined
[15] Songshan Lake Materials Laboratory,undefined
[16] Dongguan,undefined
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摘要
Van der Waals heterostructures of transition metal dichalcogenides with interlayer coupling offer an exotic platform to realize fascinating phenomena. Due to the type II band alignment of these heterostructures, electrons and holes are separated into different layers. The localized electrons induced doping in one layer, in principle, would lift the Fermi level to cross the spin-polarized upper conduction band and lead to strong manipulation of valley magnetic response. Here, we report the significantly enhanced valley Zeeman splitting and magnetic tuning of polarization for the direct optical transition of MoS2 in MoS2/WS2 heterostructures. Such strong enhancement of valley magnetic response in MoS2 stems from the change of the spin-valley degeneracy from 2 to 4 and strong many-body Coulomb interactions induced by ultrafast charge transfer. Moreover, the magnetic splitting can be tuned monotonically by laser power, providing an effective all-optical route towards engineering and manipulating of valleytronic devices and quantum-computation.
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