The recently developed magic-intensity trapping technique of neutral atoms efficiently mitigates the detrimental effect of light shifts on atomic qubits and substantially enhances the coherence time. This technique re...The recently developed magic-intensity trapping technique of neutral atoms efficiently mitigates the detrimental effect of light shifts on atomic qubits and substantially enhances the coherence time. This technique relies on applying a bias magnetic field precisely parallel to the wave vector of a circularly polarized trapping laser field. However, due to the presence of the vector light shift experienced by the trapped atoms, it is challenging to precisely define a parallel magnetic field, especially at a low bias magnetic field strength, for the magic-intensity trapping of85Rb qubits. In this work, we present a method to calibrate the angle between the bias magnetic field and the trapping laser field with the compensating magnetic fields in the other two directions orthogonal to the bias magnetic field direction. Experimentally, with a constantdepth trap and a fixed bias magnetic field, we measure the respective resonant frequencies of the atomic qubits in a linearly polarized trap and a circularly polarized one via the conventional microwave Rabi spectra with different compensating magnetic fields and obtain the corresponding total magnetic fields via the respective resonant frequencies using the Breit–Rabi formula. With known total magnetic fields, the angle is a function of the other two compensating magnetic fields.Finally, the projection value of the angle on either of the directions orthogonal to the bias magnetic field direction can be reduced to 0(4)° by applying specific compensating magnetic fields. The measurement error is mainly attributed to the fluctuation of atomic temperature. Moreover, it also demonstrates that, even for a small angle, the effect is strong enough to cause large decoherence of Rabi oscillation in a magic-intensity trap. Although the compensation method demonstrated here is explored for the magic-intensity trapping technique, it can be applied to a variety of similar precision measurements with trapped neutral atoms.展开更多
目的探讨常规MRI与弥散加权成像(DWI)测量的肿瘤容积对直肠癌TN分期的诊断价值。材料与方法对经肠镜确诊的74例直肠癌患者行盆腔3.0 T MRI检査。分析MRI对直肠癌术前TN分期的准确性,用检验评价MRI术前TN分期与病理分期的一致性。用单因...目的探讨常规MRI与弥散加权成像(DWI)测量的肿瘤容积对直肠癌TN分期的诊断价值。材料与方法对经肠镜确诊的74例直肠癌患者行盆腔3.0 T MRI检査。分析MRI对直肠癌术前TN分期的准确性,用检验评价MRI术前TN分期与病理分期的一致性。用单因素方差分析评价DWI(b=10000 s/mm^2)测量的肿瘤容积与病理TN分期的相关性。结果MRI诊断直肠癌T、N分期的准确率分别为87.8%(66/74)、66.2%(49/74);病理学和MRI对T分期诊断有较好的一致性(Kappa=0.78,P=0.000)、对N分期诊断一致性较差(Kappa=0.33,F=0.000)。在DWI上测量肿瘤容积≤T2期、T3期、T4期分别为(4145.13±718,00)mm^3、(14939.73±3591.38)mm^3、(22714.76±4251.71)mm^3;N0期、N1期、N2期分别为(14367.15±6425.83)mm^3,(17967.69±5259.88)mm^3、(19464.00±3588.77)DWI测肿瘤容积越大直肠癌T分期越高,差异有统计学意义(F=75.189,P=0.000);肿瘤容积与直肠癌不同N分期间差异有统计学意义(F=3.545,P=0.034)。结论MRI评价直肠癌T分期准确率较高,对N分期也有一定诊断价值。MR肿瘤容积测量对直肠癌TN分期有重要参考价值。展开更多
基金Project supported by the National Natural Science Foundation of China(Grant Nos.12104414,12122412,12104464,and 12104413)the China Postdoctoral Science Foundation(Grant No.2021M702955).
文摘The recently developed magic-intensity trapping technique of neutral atoms efficiently mitigates the detrimental effect of light shifts on atomic qubits and substantially enhances the coherence time. This technique relies on applying a bias magnetic field precisely parallel to the wave vector of a circularly polarized trapping laser field. However, due to the presence of the vector light shift experienced by the trapped atoms, it is challenging to precisely define a parallel magnetic field, especially at a low bias magnetic field strength, for the magic-intensity trapping of85Rb qubits. In this work, we present a method to calibrate the angle between the bias magnetic field and the trapping laser field with the compensating magnetic fields in the other two directions orthogonal to the bias magnetic field direction. Experimentally, with a constantdepth trap and a fixed bias magnetic field, we measure the respective resonant frequencies of the atomic qubits in a linearly polarized trap and a circularly polarized one via the conventional microwave Rabi spectra with different compensating magnetic fields and obtain the corresponding total magnetic fields via the respective resonant frequencies using the Breit–Rabi formula. With known total magnetic fields, the angle is a function of the other two compensating magnetic fields.Finally, the projection value of the angle on either of the directions orthogonal to the bias magnetic field direction can be reduced to 0(4)° by applying specific compensating magnetic fields. The measurement error is mainly attributed to the fluctuation of atomic temperature. Moreover, it also demonstrates that, even for a small angle, the effect is strong enough to cause large decoherence of Rabi oscillation in a magic-intensity trap. Although the compensation method demonstrated here is explored for the magic-intensity trapping technique, it can be applied to a variety of similar precision measurements with trapped neutral atoms.
基金supported by the National Key R&D Program of China(Nos.2022YFC2904501,2019YFC1907803)the National Natural Science Foundation of China(No.52004335)+1 种基金the Open Sharing Fund for Large-scale Instruments and Equipment of Central South University,China(No.CSUZC202132)the Key Laboratory of Hunan Province for Clean and Efficient Utilization of Strategic Calcium-containing Mineral Resources,China(No.2018TP1002)。
文摘目的探讨常规MRI与弥散加权成像(DWI)测量的肿瘤容积对直肠癌TN分期的诊断价值。材料与方法对经肠镜确诊的74例直肠癌患者行盆腔3.0 T MRI检査。分析MRI对直肠癌术前TN分期的准确性,用检验评价MRI术前TN分期与病理分期的一致性。用单因素方差分析评价DWI(b=10000 s/mm^2)测量的肿瘤容积与病理TN分期的相关性。结果MRI诊断直肠癌T、N分期的准确率分别为87.8%(66/74)、66.2%(49/74);病理学和MRI对T分期诊断有较好的一致性(Kappa=0.78,P=0.000)、对N分期诊断一致性较差(Kappa=0.33,F=0.000)。在DWI上测量肿瘤容积≤T2期、T3期、T4期分别为(4145.13±718,00)mm^3、(14939.73±3591.38)mm^3、(22714.76±4251.71)mm^3;N0期、N1期、N2期分别为(14367.15±6425.83)mm^3,(17967.69±5259.88)mm^3、(19464.00±3588.77)DWI测肿瘤容积越大直肠癌T分期越高,差异有统计学意义(F=75.189,P=0.000);肿瘤容积与直肠癌不同N分期间差异有统计学意义(F=3.545,P=0.034)。结论MRI评价直肠癌T分期准确率较高,对N分期也有一定诊断价值。MR肿瘤容积测量对直肠癌TN分期有重要参考价值。