音频段压缩态光场是进行连续变量量子精密测量重要的量子资源.本文利用自制的低噪声连续单频671 nm/1.34μm双波长激光器作为抽运源,抽运基于周期极化磷酸氧钛钾晶体的简并光学参量振荡器,进行了光通信波段1.34μm连续变量音频段真空压...音频段压缩态光场是进行连续变量量子精密测量重要的量子资源.本文利用自制的低噪声连续单频671 nm/1.34μm双波长激光器作为抽运源,抽运基于周期极化磷酸氧钛钾晶体的简并光学参量振荡器,进行了光通信波段1.34μm连续变量音频段真空压缩态光场的实验制备.当简并光学参量振荡器运转于阈值以下参量反放大状态时,抽运光场功率为95 mW,本地振荡光功率为60μW时,在分析频率8—100 k Hz范围内研制出1.34μm真空压缩态光场.在分析频率36 k Hz处,压缩态光场的最大压缩度达5.0 d B;在音频频率8k Hz处,压缩态光场的压缩度达3.0 d B.音频段1.34μm压缩态光场可用于实现基于光纤的量子精密测量.展开更多
细胞迁移是一个高度有序且多信号通路协调控制的过程,在个体发育、器官形成、伤口愈合及肿瘤恶性转移过程中具有重要作用.哺乳动物雷帕霉素靶蛋白(mammalian target of rapamycin,mTOR)广泛存在于从酵母到哺乳动物的细胞中,参与调控与...细胞迁移是一个高度有序且多信号通路协调控制的过程,在个体发育、器官形成、伤口愈合及肿瘤恶性转移过程中具有重要作用.哺乳动物雷帕霉素靶蛋白(mammalian target of rapamycin,mTOR)广泛存在于从酵母到哺乳动物的细胞中,参与调控与细胞生长和代谢密切相关的多种生命过程,其参与形成的复合物在调控细胞迁移过程中发挥重要作用.对雷帕霉素靶蛋白复合物的组成和它们在细胞迁移中的作用的最新研究进行系统阐述.展开更多
Round billet temperature during induction heating was calculated with numerical simulation method in present work,the factors affect induction heating were studied,such as coil turns.using of magnetic material,the con...Round billet temperature during induction heating was calculated with numerical simulation method in present work,the factors affect induction heating were studied,such as coil turns.using of magnetic material,the convective heat transfer between billet surface and surrounding environment,etc.It was found that coil turns played an important role in round billet temperature distribution,and it was necessary to choose reseaonable coil turns in order to get a relatively uniform temperature distribution.Using magnetic flux concentrator could greatly improve the billet end temperature,and the phenomena of low temperature in billet end would be elimiated.Besides,the billet temperature would be reduced by convective heat transfer in billet outsurface and air,longer time was cost to reache the target temperature.Meanwhile,the magnetic field during billet induction heating was calculated,it was used to explain billet temperature distribution and variation,the reasonable measures to control billet temperature during induction heating process were proposed.展开更多
文摘音频段压缩态光场是进行连续变量量子精密测量重要的量子资源.本文利用自制的低噪声连续单频671 nm/1.34μm双波长激光器作为抽运源,抽运基于周期极化磷酸氧钛钾晶体的简并光学参量振荡器,进行了光通信波段1.34μm连续变量音频段真空压缩态光场的实验制备.当简并光学参量振荡器运转于阈值以下参量反放大状态时,抽运光场功率为95 mW,本地振荡光功率为60μW时,在分析频率8—100 k Hz范围内研制出1.34μm真空压缩态光场.在分析频率36 k Hz处,压缩态光场的最大压缩度达5.0 d B;在音频频率8k Hz处,压缩态光场的压缩度达3.0 d B.音频段1.34μm压缩态光场可用于实现基于光纤的量子精密测量.
文摘细胞迁移是一个高度有序且多信号通路协调控制的过程,在个体发育、器官形成、伤口愈合及肿瘤恶性转移过程中具有重要作用.哺乳动物雷帕霉素靶蛋白(mammalian target of rapamycin,mTOR)广泛存在于从酵母到哺乳动物的细胞中,参与调控与细胞生长和代谢密切相关的多种生命过程,其参与形成的复合物在调控细胞迁移过程中发挥重要作用.对雷帕霉素靶蛋白复合物的组成和它们在细胞迁移中的作用的最新研究进行系统阐述.
文摘Round billet temperature during induction heating was calculated with numerical simulation method in present work,the factors affect induction heating were studied,such as coil turns.using of magnetic material,the convective heat transfer between billet surface and surrounding environment,etc.It was found that coil turns played an important role in round billet temperature distribution,and it was necessary to choose reseaonable coil turns in order to get a relatively uniform temperature distribution.Using magnetic flux concentrator could greatly improve the billet end temperature,and the phenomena of low temperature in billet end would be elimiated.Besides,the billet temperature would be reduced by convective heat transfer in billet outsurface and air,longer time was cost to reache the target temperature.Meanwhile,the magnetic field during billet induction heating was calculated,it was used to explain billet temperature distribution and variation,the reasonable measures to control billet temperature during induction heating process were proposed.