Alexandre C. DiasJiyong FuL. Villegas‐LelovskyFanyao Qu
We report a theoretical investigation on the energy spectrum and the effective Zeeman energy (EZE) in monolayer MoS2 circular quantum dots, subjected to an out-of-plane magnetic field. Interestingly, we observe the emergence of energy-locked modes, depending on the competition between the dot confinement and the applied magnetic field, for either the highest K-valley valence band or the lowest [Formula: see text]-valley conduction band. Moreover, an unusual dot-size-independent EZE behavior of the highest valence and the lowest conduction bands is found. Although the EZEs are insensitive to the variation of quantum confinement, both of them grow linearly with the magnetic field, similar to that in the monolayer MoS2 material. The EZEs along with their 'robustness' against dot confinements open opportunities of a universal magnetic control over the valley degree of freedom, for quantum dots of all sizes.
Ziqian WangRuichun LuoIsaac JohnsonHamzeh KashaniMingwei Chen
Minseon GuKeun Wook LeeBeomjin ParkBeom Soo JooYoung Jun ChangDong‐Wook ParkMoonsup Han
Bin LiYuke GaoRuixiang WuXiangyang MiaoGuofeng Zhang
Wen QiaoShiming YanXueyin SongXing ZhangYuan SunXing ChenWei ZhongYouwei Du
Datong ZhangDennis Zi-Ren WangRichard CreswellChenguang LuJonathan T. LiouIrving P. Herman