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脉冲慢束空间聚焦的SIMION模拟 被引量:1
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作者 许红霞 陈祥磊 +5 位作者 成斌 熊涛 高传波 郝颖萍 翁惠民 叶邦角 《核电子学与探测技术》 CAS CSCD 北大核心 2010年第5期614-617,共4页
用SIMION 7.0光学离子模拟软件对正电子在慢正电子束装置的静电及静磁场中的加速、输运、空间聚焦情况进行了模拟计算,初步得到了很好的空间聚焦模拟结果。对于加速能量为0.5~30keV的正电子束流聚焦半径控制在5 mm以下,满足了实验的需要。
关键词 SIMION 脉冲慢正电子 斩波器 集束腔
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Single nanoparticle trapping based on on-chip nanoslotted nanobeam cavities 被引量:2
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作者 DAQUAN YANG FEI GAO +3 位作者 QI-TAo CAO CHUAN WANG YUEFENG JI AND YuN-FENG XIAO 《Photonics Research》 SCIE EI 2018年第2期99-108,共10页
Optical trapping techniques are of great interest since they have the advantage of enabling the direct handling of nanoparticles. Among various optical trapping systems, photonic crystal nanobeam cavities have attract... Optical trapping techniques are of great interest since they have the advantage of enabling the direct handling of nanoparticles. Among various optical trapping systems, photonic crystal nanobeam cavities have attracted great attention for integrated on-chip trapping and manipulation. However, optical trapping with high efficiency and low input power is still a big challenge in nanobeam cavities because most of the light energy is confined within the solid dielectric region. To this end, by incorporating a nanoslotted structure into an ultracompact one- dimensional photonic crystal nanobeam cavity structure, we design a promising on-chip device with ultralarge trapping potential depth to enhance the optical trapping characteristic of the cavity. In this work, we first provide a systematic analysis of the optical trapping force for an airborne polystyrene (PS) nanoparticle trapped in a cavity model. Then, to validate the theoretical analysis, the numerical simulation proof is demonstrated in detail by using the three-dimensional finite element method. For trapping a PS nanoparticle of 10 nm radius within the air-slot, a maximum trapping force as high as 8.28 nN/mW and a depth of trapping potential as large as 1.15 × 105 kBTmW-1 are obtained, where kB is the Boltzmann constant and T is the system temperature. We estimate a lateral trapping stiffness of 167.17 pN. nm-1 . mW-1 for a 10 nm radius PS nanoparticle along the cavity x-axis, more than two orders of magnitude higher than previously demonstrated on-chip, near field traps. Moreover, the threshold power for stable trapping as low as 0.087 μW is achieved. In addition, trapping of a single 25 nm radius PS nanoparticle causes a 0.6 nm redshift in peak wavelength. Thus, the proposed cavity device can be used to detect single nanoparticle trapping by monitoring the resonant peak wavelength shift. We believe that the architecture with features of an ultracompact footprint, high integrahility with optical waveguides/cir- cuits, and efficient trapping demonstrated here will provide a promising candidate for developing a lab-on-a-chip device with versatile functionalities. 展开更多
关键词 (130.3120) Integrated optics devices (350.4238) Nanophotonics and photonic crystals (350.4855) Optical tweezers oroptical manipulation (020.7010) Laser trapping (230.5298) Photonic crystals (230.5750) Resonators.
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