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Correlated Tunneling in Hydrogen Bonds

机译:氢键中的相关隧穿

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We study the quantum nature of the protons participating in hydrogen bonds in several ice structures by analyzing the one particle density matrix. We find that in all cases, including ice Ih, the most common form of ice, and the high pressure phases, ice VIII, VII, and X, the system is ground-state dominated. However, while the dynamics is uncorrelated in the structures with standard asymmetric hydrogen bonds, such as ice Ih and VIII, local correlations among the protons characterize ice VII and, to a lesser extent, ice X in the so-called low barrier hydrogen bond regime. The correlations appear along the path to hydrogen bond symmetrization, when quantum fluctuations delocalize the proton on the two bond sides. The correlations derive from a strong requirement for local charge neutrality that favors concerted motion along the bonds. The resulting behavior deviates substantially from mean field theory, which would predict in ice VII coherent tunneling of the proton between the two bond sides, thereby causing an ionization catastrophe. Due to the correlations, the quantum state of the proton is entangled.
机译:通过分析一个粒子密度矩阵,我们研究了质子在几个冰结构中参与氢键的量子性质。我们发现,在所有情况下,包括冰Ih(冰的最常见形式)以及高压相(冰VIII,VII和X),系统都是基态主导的。但是,虽然动力学在具有标准不对称氢键的结构中不相关,例如冰Ih和VIII,但是质子之间的局部相关性是冰VII的特征,而在较小的程度上,冰X在所谓的低势垒氢键体系中具有特征。 。当量子涨落使质子在两个键的侧面离域时,相关性沿着氢键对称化的路径出现。相关性源自对本地电荷中性的强烈要求,该要求有利于沿键的协调运动。所得的行为大大偏离了平均场理论,该理论将在冰VII中预测质子在两个键侧之间的相干隧穿,从而引起电离灾难。由于相关性,质子的量子态被纠缠。

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