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中性原子的激光导引及其应用 总被引:1,自引:0,他引:1
文章综述了采用中空光纤中红失谐高斯模式,红失谐高斯激光束,中空光纤中蓝失谐消逝波和蓝失谐暗中空光束实现中性原子激光导引的原理,方法和实验及其最新进展,并简单介绍了激光导引原子技术在原子光学领域中的应用。 相似文献
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提出了一种利用红失谐高斯光束偶极力实现二维磁光阱长距离传输冷原子束的方案.利用二能级原子所受散射力公式分析并构造了87 Rb原子在光偶极阱二维磁光阱(2D-ODT MOT)中的受力公式,考虑了原子与背景气体碰撞的影响,利用四阶龙格-库塔法求解原子运动方程,获得原子的运动轨迹,统计并求出原子在不同高斯光束失谐以及功率条件作用下进入差分泵浦范围的原子数.实验验证了在红失谐高斯光束与原子束推送光相互组合的4种工作状态下科学实验腔中磁光阱冷原子装载情况.理论与实验结果表明:基于红失谐高斯光束的二维磁光阱长距离传输冷原子束的效果提升显著,科学腔原子装载效率明显提升、原子数目明显增加. 相似文献
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原子反射镜是人们从事原子光学实验研究的重要器件之一.本文将简单综述采用冷原子磁、光操控技术发展起来的诸如消逝波原子反射镜、半高斯光束原子反射镜、周期性磁化的磁带反射镜、周期性排列的永久磁铁反射镜和载流导线磁反射镜等各种原子反射镜的基本原理、实验方案及其最新进展,并就原子反射镜在原子光学实验中的应用作一简单介绍. 相似文献
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采用二维磁光阱产生了-个快速~(87)Rb原子流,并在高真空的三维磁光阱中实现了~(87)Rb原子的快速俘获,进一步采用射频蒸发冷却技术实现了原子云的预冷却,然后将原子转移到远失谐的光学偶极阱中蒸发得到了玻色-爱因斯坦凝聚体.实验上可以在25 s内完成三维磁光阱的装载(约1.0×10~(10)个~(87)Rb原子),然后经过16 s的冷却过程最终在光学偶极阱中获得5.0×10~5个原子的玻色-爱因斯坦凝聚体.实验重点研究了二维磁光阱的优化设计和采用蓝失谐大功率光束对四极磁阱零点的堵塞,抑制四极磁阱中原子的马约拉纳损耗,更加有效地对原子云进行预冷却. 相似文献
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提出了一种利用双周期弧向非满额相位调制的方法产生双空心光束的方案. 当准直氦氖激光通过1.5 mm半径透光孔照射到该相位图样时, 在200 mm成像透镜像空间获得长30 mm, 间距57.6μm, 单管束宽度0.11–0.14 mm的双空心光束. 该方案结构简单, 产生的双空心光束具有较好的可控性, 双光管间距由相位调制因子p决定, 能够实现从双空心光束到单空心光束的双向演化. 对所提出的方案进行了实验研究并得到与理论相符的结果. 利用多种组合方式讨论了将该方案拓展到蓝失谐光学囚禁势阱, 可以实现可控的空心双光阱、四光阱与光学晶格等, 有望在冷原子、冷分子囚禁与操控等领域的实验研究中发挥重要作用. 相似文献
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综述了近年来有关蒸发冷却133Cs原子样品的实验进展,分析了磁囚禁133Cs原子玻色爱因斯坦凝聚(BEC)的困难,并在此基础上提出了一个全光型冷却与囚禁133Cs原子BEC的新方案.该方案主要由一个来自半导体激光(λ=0852μm)的倒金字塔形中空光束重力光学囚禁(pyramidal-hollow-beam gravito-optical trap,缩写为PHB GOT)和一个来自Ar+激光(λ=05013μm)的圆锥形中空光束重力光学囚禁(conical-hollow-beam gravito-optical trap,缩写为CHB GOT)组成.在PHB GOT中,冷原子经历了一个有效的中空光束感应的Sisyphus冷却(也即强度梯度冷却)和抽运光感应的几何冷却,原子温度将被从磁光囚禁(MOT)温度(约为60μK)冷却至几个光子反冲极限(约为2μK);而在Ar+中空光束囚禁(CHB GOT)中,冷原子将被Raman冷却或速度选择相干粒子数囚禁技术(velocity-selection coherent population trap,缩写为VSCPT)进一步冷却至光子反冲极限以下,并被激光频率高于原子共振频率的(也即蓝失谐的)covering光束压缩.我们就PHB冷却的动力学过程进行了Monte-Carlo模拟,并计算了Ar+中空光束囚禁133Cs原子的光学势.研究结果表明,实现一个全光学冷却与囚禁的133Cs原子BEC是可能的
关键词:
倒金字塔型中空光束重力光学囚禁
强度梯度冷却
氩离子中空光束囚禁
喇曼冷却
铯原子BEC 相似文献
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随着原子激光冷却、囚禁与操控技术以及微米、纳米微电子制作技术的快速发展与不断完善,一个新兴的原子光学分支学科一“集成原子光学及其原子芯片”正在形成。本文重点介绍了集成原子光学及其原子芯片的集成方案、实验结果及其最新进展:包括表面微结构原子光学元器件、微磁结构集成原子光学、微光结构集成原子光学和微磁光结构集成原子光学及其原子芯片的设计方案与微制作技术及其最新实验结果。最后,简单总结了原子芯片的设计原则,讨论了芯片设计与研制中尚待解决的问题,并就集成原子光学的潜在应用及其未来发展作一简单展望。 相似文献
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We demonstrated two experimental methods of producing and
guiding pulsed atomic beams on chip. One is to trap atoms first in a
U-type magneto-optical trap on the chip, then transfer them to the
magnetic guide field and push them simultaneously by a continuous
force from the power imbalance of the magneto-optical trap laser
beams hence the pulsed cold atom beams are produced and move along
the magnetic guide to the destination. The other is to trap atoms
directly by a H-type magneto-optical trap, then push them to make
them move along the magnetic guide field, thus high rate cold atom
beams can be produced and guided on the chip. 相似文献
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We propose a dark gravito-optical dipole trap, for alkali atoms, consisting of a blue-detuned, pyramidal-hollow laser beam propagating upward and the gravity field. When cold atoms from a magneto-optical trap are loaded into the pyramidal-hollow beam and bounce inside the pyramidal-hollow beam, they experience efficient Sisyphus cooling and geometric cooling induced by the pyramidal-hollow beam and the weak repumping beam propagating downward. Our study shows that an ultracold and dense atomic sample with an equilibrium 3D momentum of ~3 \hbar k and an atomic density above the point of Bose-Einstein condensation may be obtained in this pure optical trap. 相似文献
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为了制备适于原子干涉仪实验的低温锂原子样品,开展了锂原子的塞曼减速及与磁光阱囚禁相关的实验研究.设计并实现了一种结构紧凑的腔体内冷式多级线圈叠加的塞曼减速器,将速度小于600 m/s的7Li原子减速到60 m/s,磁光阱装载速率为5×108/s,囚禁原子数目1×109个,原子团的最低温度约为220±30μK.研究了光学黏胶中7Li原子的寿命与囚禁光频率失谐量的关系.这些结果为进一步开展7Li原子亚多普勒冷却、光势阱蒸发冷却以及原子干涉仪实验奠定了基础. 相似文献
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Generations of dark hollow beams and their applications in laser cooling of atoms and all optical-type Bose-Einstein condensation 下载免费PDF全文
We report on a new experimental result to generate dark hollow beams by using a geometric optical method. We propose two new methods to produce focused and localized hollow laser beams by using π-phase plates. Using Monte-Carlo simulations, we have studied the Sisyphus cooling of alkali atoms in pyramidal hollow beam gravito-optical traps. We discuss some potential applications of the dark hollow beams in atom optics and the preparation of an all optically-cooled and optically-trapped atomic Bose-Einstein condensation (BEC). Our research shows that an ultracold atomic sample with a temperature of ~ 2μK can be obtained in the pyramidal hollow beam dipole trap and an all optical-type BEC may be realized in a far blue-detuned, hollow beam trap. 相似文献
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腔内中性原子的长时间控制与俘获一直是腔量子电动力学(QED)中的一个难题,极大地制约了人们相干操控单原子及其与光相互作用的研究.基于传统Fabry-Perot光学腔,设计了一套易于内腔原子操控的强耦合腔QED系统,其典型参数为:腔长3.5 mm精细度约为57000,(g0,κ,γ)=2π×(1.48,0.375,2.61)MHz,临界光子数和原子数分别为1.54和0.89.该系统的特点是:能够在腔内直接实现冷原子磁光阱,并建立腔内光学晶格,实现腔内可控数目的中性原子的长时间俘获.通过合理选择构建光学偶极阱和原子成像系统,可实现对腔内单个原子或原子阵列的操控、探测、成像等.该系统可以克服传统腔QED系统中转移原子的困难,大幅增加腔内原子的寿命,为构建以腔QED系统为基础的量子信息演示平台提供了一种可能. 相似文献
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提出了一种采用单模光纤、环形二元相位板和微透镜组成的光束整形系统产生亚微米局域空心光束的方案. 根据瑞利-索莫菲衍射积分公式, 数值计算了微透镜焦平面附近的场分布, 详细研究了空心光束的暗斑尺寸与单模光纤模场半径和微透镜焦距的关系. 数值计算结果表明: 在微透镜焦平面附近光场分布近似对称, 在焦点处场强近似为零, 周围场强逐渐增大, 形成半径约为0.4 μm的三维封闭的球形空心光场区域, 即亚微米局域空心光束. 当局域空心光束为蓝失谐时, 光场中的原子将被囚禁在光场最弱处. 若加上抽运光, 原子将受到蓝失谐局域空心光束与抽运光共同激发的强度梯度Sisyphus冷却. 本文利用该方案产生的亚微米局域空心光束构建单原子的囚禁与冷却器件, 并以单个87Rb原子为例, 利用Mont-Carlo方法研究亚微米局域空心光束中单原子囚禁与强度梯度冷却的动力学过程, 结果表明利用该器件可以获得温度在5.8 μK量级的超冷单原子. 相似文献
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Diffracted field distribution from a knife-edge truncated semi-Gaussian beam as an atomic (molecular) mirror 下载免费PDF全文
We investigate the diffraction characteristics of an incident Gaussian
beam cut
by a straight edge bounding a semi-infinite opaque plane using Kirchhoff
scalar wave theory in the Fresnel limit, and propose a new and simple mirror
scheme to reflect atoms by using the intensity gradient induced by a
blue-detuned semi-Gaussian laser beam. The optical potential of the
diffracted light of the knife-cut semi-Gaussian beam for
$^{85}$Rb atom and its spontaneous emission probability are calculated and
compared with the performance of the evanescent-wave mirror. Our study shows
that the optical potential of the diffracted light of the semi-Gaussian beam
is far higher than that of the evanescent light wave, and the maximum normal
velocity of the incident atoms can be far greater than that of the
evanescent light wave under the same parameters, so the blue-detuned
semi-Gaussian beam, as a novel atomic mirror, can be used to efficiently
reflect cold atoms with a normal velocity of greater than 1 m/s. However,
the intensity gradient (force) of the diffracted light of the
semi-Gaussian-beam is much smaller than that of the evanescent light wave, so
its spontaneous emission probability is greater than that from the
evanescent-wave when the normal velocity of incident atoms is greater. 相似文献
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A cold atom source is important for quantum metrology and precision measurement. To reduce the quantum projection noise limit in optical lattice clock, one can increase the number of cold atoms and reduce the dead time by enhancing the loading rate. In this work, we realize an enhanced cold mercury atom source based on a two-dimensional (2D) magneto-optical trap (MOT). The vacuum system is composed of two titanium chambers connected with a differential pumping tube. Two stable cooling laser systems are adopted for the 2D-MOT and the three-dimensional (3D)-MOT, respectively. Using an optimized 2D-MOT and push beam, about 1.3×106 atoms, which are almost an order of magnitude higher than using a pure 3D-MOT, are loaded into the 3D-MOT for 202Hg atoms. This enhanced cold mercury atom source is helpful in increasing the frequency stability of a neutral mercury lattice clock. 相似文献