论文标题
(CD,MN)TE/(CD,MN,MG)TE量子井中的TRION磁性极地点
Trion magnetic polarons in (Cd,Mn)Te/(Cd,Mn,Mg)Te quantum wells
论文作者
论文摘要
通过在4 \,nm宽的4 \,nm宽中发现了带正电荷的激子(TRION)与Mn $^{2+} $ ions局部旋转的交换相互作用形成的Trion磁极CD $ _ {0.98} $ MN $ _ {0.02} $ TE/CD $ _ {0.78} $ MN $ _ {0.02} $ mg $ _ {0.2} $ cob contentum contentum contentum contenum contentum contentum contentum。实验是在1.6 K的温度下使用圆形极化光的TRION的共振激发进行的。 TRION是由驻留磁性层状状态和光生的电子孔对的居民孔形成的。从孔磁极到TRION磁极的动力学演变伴随着电子的自旋,从而导致光致发光的负圆极化。在零磁场处的圆极化程度达到$ -8 \%$,并且在横向磁场中强烈降低了超过0.2 t的横向磁场。我们的模型注意事项表明,居民和光生孔的不同定位尺寸和光生孔的不同定位尺寸,以及它们与MN $^{2+} $ spins MN MN MN MN SPINAINS MN SPINS维持MN Spinains Mn Spin Spin偏振的差异。作用在电子上的MN的交换场提供了TRION磁极偏振子的强大自旋极化。我们将T $^+$ MP中的电子交换能量评估为0.19〜MEV,而T $^+$ MP绑定能量约为0.5-1 MEV。
A trion magnetic polaron formed by the exchange interaction of a positively charged exciton (trion) with localized spins of Mn$^{2+}$ ions is found experimentally in a 4\,nm wide Cd$_{0.98}$Mn$_{0.02}$Te/Cd$_{0.78}$Mn$_{0.02}$Mg$_{0.2}$Te quantum well containing resident holes. The experiment is performed at a temperature of 1.6 K using resonant excitation of the trion with circularly polarized light. The trion is formed from a resident hole, which is in a hole magnetic polaron state, and a photogenerated electron-hole pair. The dynamical evolution from the hole magnetic polaron to the trion magnetic polaron is accompanied by a spin-flip of the electron, which results in negative circular polarization of the photoluminescence. The degree of circular polarization reaches $-8\%$ at zero magnetic field and strongly decreases in transverse magnetic fields exceeding 0.2 T. Our model considerations show that different localization sizes of the resident and photogenerated holes and the resulting difference in their exchange interaction with the Mn$^{2+}$ spins maintains Mn spin polarization. The resulting exchange field of Mn acting on the electron provides a robust spin polarization of the trion magnetic polaron. We evaluate the electron exchange energy in the T$^+$MP to be 0.19~meV, and the T$^+$MP binding energy to be about 0.5 - 1 meV.