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Numerical Examination of Optical Lattice Gas Heating within Realistic Optical Cavities

机译:现实光学腔内光学晶格气加热的数值检查

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With a focus on optical lattice gas heating, direct simulation Monte Carlo was used to investigate the interaction between molecular nitrogen, initially at 300 K and 0.8 atm, and ten successive, pulsed optical lattices in the presence of two multipass cavity concepts. Created from two 5 ns, 130 mJ, 532 nm laser pulses, the optical lattice parameters simulated were chosen based on published optical lattice-based experiments. Similarly, the cavity concepts used were simulated with optical energy losses comparable to that observed experimentally. Translational gas temperatures were sampled on every cavity round trip and found to facilitate several hundred Kelvin increases in some cases. Importantly, these simulation results suggest that while optical energy losses significantly limit attainable gas temperatures in the context of multipass optical cavities, net momentum deposition into the gas profoundly impacts the energy deposition potential and gas temperature changes achievable through optical lattice gas heating.
机译:通过专注于光学晶格气体加热,使用直接仿真蒙特卡罗来研究分子氮之间的相互作用,最初在300k和0.8atm之间,并且在两个多人腔概念的存在下存在10个连续的脉冲光学格子。从两个5 ns,130 mj,532 nm激光脉冲产生,基于已发布的基于光学晶格的实验来选择模拟的光学晶格参数。类似地,使用的腔概念用与实验观察的光学能量损失进行了模拟。在每个腔往返时对平移气体温度进行采样,发现在某些情况下促进了数百个开尔文的增加。重要的是,这些仿真结果表明,虽然光学能量损失在多处光学腔的背景下显着限制可达到的气体温度,但净动量沉积到气体中通过光学晶格气体加热可实现的能量沉积电位和气体温度变化。

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