论文标题
双重旋转激光器的强度方程
Intensity equations for birefringent spin lasers
论文作者
论文摘要
半导体旋转激光器通过存在自旋极化载体区别于其常规对应物。自旋载体的角动量向光子的角度转移为激光器操作提供了重要的机会。通过注入自旋偏振载体(导致圆形偏振光),发射光的极化可以比其强度快的数量级更换。自旋激光器的这种超快操作依赖于较大的双折射,通常被视为自旋和常规激光器有害。我们使用强度方程式介绍了对自旋激光器的透明描述,该方程阐明了双折射对激光的强度和极化调制的影响。尽管强度调制独立于双折射,但对于极化调制,双折射的增加直接增加了谐振频率。我们的激光动态操作结果为它们的自旋依赖性响应和超越磁化剂的旋转响应提供了指南。
Semiconductor spin lasers are distinguished from their conventional counterparts by the presence of spin-polarized carriers. The transfer of angular momentum of the spin-polarized carriers to photons provides important opportunities for the operation of lasers. With the injection of spin-polarized carriers, which lead to the circularly polarized light, the polarization of the emitted light can be changed an order of magnitude faster than its intensity. This ultrafast operation of spin lasers relies on a large birefringence, usually viewed as detrimental in spin and conventional lasers. We introduce a transparent description of spin lasers using intensity equations, which elucidate the influence of birefringence on the intensity and polarization modulation of lasers. While intensity modulation is independent of birefringence, for polarization modulation an increase in birefringence directly increases the resonant frequency. Our results for dynamical operation of lasers provide a guide for their spin-dependent response and spintronic applications beyond magnetoresistance.