Duruisseau Paul, Touil Akram, Deffner Sebastian
ENS Paris-Saclay, 91190 Gif-sur-Yvette, France.
Theoretical Division, Los Alamos National Laboratory, Los Alamos, NM 87545, USA.
Entropy (Basel). 2023 Nov 22;25(12):1573. doi: 10.3390/e25121573.
Quantum Darwinism explains the emergence of classical objectivity within a quantum universe. However, to date, most research on quantum Darwinism has focused on specific models and their stationary properties. To further our understanding of the quantum-to-classical transition, it appears desirable to identify the general criteria a Hamiltonian has to fulfill to support classical reality. To this end, we categorize all -qubit models with two-body interactions, and show that only those with separable interaction of the system and environment can support a pointer basis. We further demonstrate that "perfect" quantum Darwinism can only emerge if there are no intra-environmental interactions. Our analysis is complemented by solving the ensuing dynamics. We find that in systems exhibiting information scrambling, the dynamical emergence of classical objectivity directly competes with the non-local spread of quantum correlations. Our rigorous findings are illustrated through the numerical analysis of four representative models.
量子达尔文主义解释了量子宇宙中经典客观性的出现。然而,迄今为止,大多数关于量子达尔文主义的研究都集中在特定模型及其稳态性质上。为了进一步理解量子到经典的转变,确定哈密顿量必须满足的支持经典实在的一般标准似乎是可取的。为此,我们对所有具有两体相互作用的量子比特模型进行分类,并表明只有那些系统与环境具有可分离相互作用的模型才能支持一个指针基。我们进一步证明,只有在没有环境内相互作用的情况下,“完美”的量子达尔文主义才会出现。我们通过求解由此产生的动力学对分析进行了补充。我们发现,在表现出信息扰乱的系统中,经典客观性的动力学出现直接与量子关联的非局域传播相竞争。我们通过对四个代表性模型的数值分析来说明我们的严格发现。