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Quantum dynamics of long-range interacting systems using the positive-P and gauge-P representations

机译:使用正P和仪表 - P表示远程交互系统的量子动态

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摘要

We provide the necessary framework for carrying out stochastic positive-P and gauge-P simulations of bosonic systems with long-range interactions. In these approaches, the quantum evolution is sampled by trajectories in phase space, allowing calculation of correlations without truncation of the Hilbert space or other approximations to the quantum state. The main drawback is that the simulation time is limited by noise arising from interactions. We show that the long-range character of these interactions does not further increase the limitations of these methods, in contrast to the situation for alternatives such as the density matrix renormalization group. Furthermore, stochastic gauge techniques can also successfully extend simulation times in the long-range-interaction case, by making using of parameters that affect the noise properties of trajectories, without affecting physical observables. We derive essential results that significantly aid the use of these methods: estimates of the available simulation time, optimized stochastic gauges, a general form of the characteristic stochastic variance, and adaptations for very large systems. Testing the performance of particular drift and diffusion gauges for nonlocal interactions, we find that, for small to medium systems, drift gauges are beneficial, whereas for sufficiently large systems, it is optimal to use only a diffusion gauge. The methods are illustrated with direct numerical simulations of interaction quenches in extended Bose-Hubbard lattice systems and the excitation of Rydberg states in a Bose-Einstein condensate, also without the need for the typical frozen gas approximation. We demonstrate that gauges can indeed lengthen the useful simulation time.
机译:我们为具有远程相互作用进行了助击性系统的随机正P和仪表-P模拟提供了必要的框架。在这些方法中,通过相位空间的轨迹采样量子演化,允许计算在没有截短希尔伯特空间或其他近似到量子状态的相关的相关性。主要缺点是模拟时间受相互作用引起的噪声的限制。我们表明,这些相互作用的远程特征不会进一步提高这些方法的局限性,与密度矩阵重整化组的替代品的情况相比。此外,随机仪表技术还可以通过使用影响轨迹的噪声特性的参数来成功地延长远程交互情况的模拟时间,而不会影响物理观察。我们推出了重要的结果,可显着帮助使用这些方法:估计可用模拟时间,优化的随机仪表,特征随机方差的一般形式,以及对非常大的系统的适应性。测试特定漂移和扩散量表的性能进行非局部相互作用,我们发现,对于小于中等系统,漂移量是有益的,而对于足够大的系统,仅使用扩散计是最佳的。该方法用延伸的Bose-Hubbard晶格系统中的相互作用淬火的直接数值模拟,并在Bose-Einstein冷凝物中激发rydberg状态,同样没有需要典型的冷冻气体近似。我们证明仪表确实可以延长有用的模拟时间。

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