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复合脉冲控制阶梯型多态量子系统的转移通道
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作者 张钻娴 REHMAN Fazal +1 位作者 陈志文 黄巍 《华南师范大学学报(自然科学版)》 CAS 北大核心 2020年第4期31-36,共6页
提出了利用复合脉冲在阶梯型多态量子系统中操控量子态演化和粒子数相干转移的方法.首先通过Morris-Shore变换,借助二能级传播算子描述多态量子系统的演化.然后利用增加脉冲序列数且单个脉冲的相位可控的技术,抑制额外的转移通道,实现... 提出了利用复合脉冲在阶梯型多态量子系统中操控量子态演化和粒子数相干转移的方法.首先通过Morris-Shore变换,借助二能级传播算子描述多态量子系统的演化.然后利用增加脉冲序列数且单个脉冲的相位可控的技术,抑制额外的转移通道,实现高效率高鲁棒性的量子态操控和粒子数转移.最后通过数值模拟研究了额外通道和转移通道的拉比频率比、脉冲面积的变化、单光子失谐偏离零点等因素对转移效率的影响.结果表明:常被用于二能级量子系统的复合脉冲操控方法也可被应用于多态量子系统.通过增加脉冲序列数,可有效减小相关参数的扰动,保持高效率的粒子数转移.多脉冲序列复合脉冲的技术可以解决偏振不纯、激光频率不纯、控制参数扰动等造成的量子态操控效率降低等问题.研究结果对构造量子门、量子模拟等相关研究具有重要意义. 展开更多
关键词 量子态操控 复合脉冲 Morris-Shore变换 多态量子系统
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Production of 87Rb Bose–Einstein Condensate with a Simple Evaporative Cooling Method
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作者 Rehman Fazal Jia-Zhen Li +7 位作者 Zhi-Wen Chen Yuan Qin Ya-Yi Lin Zuan-Xian Zhang Shan-Chao Zhang Wei Huang Hui Yan Shi-Liang Zhu 《Chinese Physics Letters》 SCIE CAS CSCD 2020年第3期45-49,共5页
A Bose–Einstein condensate with a large atom number is an important experimental platform for quantum simulation and quantum information research.An optical dipole trap is the a conventional way to hold the ultracold... A Bose–Einstein condensate with a large atom number is an important experimental platform for quantum simulation and quantum information research.An optical dipole trap is the a conventional way to hold the ultracold atoms,where an atomic cloud is evaporatively cooled down before reaching the Bose–Einstein condensate.A carefully designed trap depth controlling curve is typically required to realize the optimal evaporation cooling.We present and demonstrate a simple way to optimize the evaporation cooling in a crossed optical dipole trap.A polyline shape optical power control profile is easily obtained with our method,by which a pure Bose–Einstein condensate with atom number 1.73×10^5 is produced.Theoretically,we numerically simulate the optimal evaporation cooling using the parameters of our apparatus based on a kinetic theory.Compared to the simulation results,our evaporation cooling shows a good performance.We believe that our simple method can be used to quickly realize evaporation cooling in optical dipole traps. 展开更多
关键词 theory. EINSTEIN DIPOLE
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