TY - JOUR
T1 - Simultaneously Enhanced Emission and Valley Polarization of Dark Excitons of Monolayer WSe2 Using the Dual Effect of Strain and Magnetic Proximity
AU - Ren, Yafang
AU - Yang, Longkun
AU - Wang, Meng Chien
AU - Lv, Yanhui
AU - Fan, Yujing
AU - Abid, Mohamed
AU - Coileáin, Cormac Ó
AU - Chang, Ching Ray
AU - Wu, Han Chun
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/3/28
Y1 - 2024/3/28
N2 - Monolayer WSe2 exhibits an interesting dark exciton ground state and remarkable valley properties due to broken inversion symmetry and spin-orbit coupling; such features mean WSe2 holds significant promise for novel valleytronic devices. However, the exploitation of dark excitons in valleytronic devices is still in its infancy as it remains a challenge to achieve insensitive emission or/and high valley polarization of dark excitons. In this work, using a patterned yttrium iron garnet (YIG) substrate, we investigated the effects of magnetic proximity and strain on the optical properties of monolayer WSe2. It is found that with just strain the emission from dark excitons can be enhanced but with nearly zero valley polarization. The magnetic exchange interaction between YIG and single-layer WSe2 can enhance the valley polarization of exciton emissions of monolayer WSe2, but the emission from dark excitons is very low. Interestingly, under the dual effect of strain and YIG magnetic proximity, the emission and valley polarization of dark excitons can be simultaneously and significantly enhanced. The intensity differences in emission excited by left and right circularly polarized light of excited dark excitons, both dark exciton (XD) and dark trion (XDT), are enhanced by more than a factor of 15 compared with only magnetic proximity effects. Moreover, the emission and the valley polarization of intervalley excitons were also enhanced, and valley polarization of intervalley excitons reaches 18%.
AB - Monolayer WSe2 exhibits an interesting dark exciton ground state and remarkable valley properties due to broken inversion symmetry and spin-orbit coupling; such features mean WSe2 holds significant promise for novel valleytronic devices. However, the exploitation of dark excitons in valleytronic devices is still in its infancy as it remains a challenge to achieve insensitive emission or/and high valley polarization of dark excitons. In this work, using a patterned yttrium iron garnet (YIG) substrate, we investigated the effects of magnetic proximity and strain on the optical properties of monolayer WSe2. It is found that with just strain the emission from dark excitons can be enhanced but with nearly zero valley polarization. The magnetic exchange interaction between YIG and single-layer WSe2 can enhance the valley polarization of exciton emissions of monolayer WSe2, but the emission from dark excitons is very low. Interestingly, under the dual effect of strain and YIG magnetic proximity, the emission and valley polarization of dark excitons can be simultaneously and significantly enhanced. The intensity differences in emission excited by left and right circularly polarized light of excited dark excitons, both dark exciton (XD) and dark trion (XDT), are enhanced by more than a factor of 15 compared with only magnetic proximity effects. Moreover, the emission and the valley polarization of intervalley excitons were also enhanced, and valley polarization of intervalley excitons reaches 18%.
UR - http://www.scopus.com/inward/record.url?scp=85188067617&partnerID=8YFLogxK
U2 - 10.1021/acs.jpcc.4c00516
DO - 10.1021/acs.jpcc.4c00516
M3 - Article
AN - SCOPUS:85188067617
SN - 1932-7447
VL - 128
SP - 5228
EP - 5235
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
IS - 12
ER -