b.定义(去掉时间t)Pcb = Pcbe-i(v+wca)tPab = Pabe-ivt并且△= ab - VVu= Wac,双光子共振又一次被掩盖得到:iabEdpabi=-(i +Yab)pabueoc2九2dtdpcb= -(i+ Ycb)Pcb +uei冲Pabdt17
17 b. 定义 (去掉时间 t) �/0 = �c/0�'$4& , �10 = �c10�'$ 4#%(% & 并且 �; = �/1, Δ = �/0 − � u 双光子共振又一次被掩盖 得到: ��c/0 �� = − �Δ + �/0 �c/0 + � 2 ℘/0ℇ ℏ + � 2�;�'$3)�c10 =>B(& =& = − �Δ + �10 �c10 + $ . �;�$3)�c/0
c.定义i+abPabRM =1Pcb中i+cb[a)VudriveWA =2九V20/c)probeY3则(b)Vμ= WacdR-MR+Adt稳态解R = M-1A-MR+A=0,18
18 c. 定义 � = �c/0 �c10 , � = �� + �/0 − � 2�;�'$3) − � 2�;�$3) �� + �10 , � = � 2 ℘/0ℇ ℏ 0 则 �� �� = −�� + � 稳态解 −�� + � = 0, � = �',�