Department of Physics, Temple University, Philadelphia, PA 19122.
Department of Physics, University of California, Berkeley, CA 94720.
Proc Natl Acad Sci U S A. 2022 May 17;119(20):e2201258119. doi: 10.1073/pnas.2201258119. Epub 2022 May 13.
SignificanceIn X-ray absorption spectroscopy, an electron-hole excitation probes the local atomic environment. The interpretation of the spectra requires challenging theoretical calculations, particularly in a system like liquid water, where quantum many-body effects and molecular disorder play an important role. Recent advances in theory and simulation make possible new calculations that are in good agreement with experiment, without recourse to commonly adopted approximations. Based on these calculations, the three features observed in the experimental spectra are unambiguously attributed to excitonic effects with different characteristic correlation lengths, which are distinctively affected by perturbations of the underlying H-bond structure induced by temperature changes and/or by isotopic substitution. The emerging picture of the water structure is fully consistent with the conventional tetrahedral model.
意义在 X 射线吸收光谱学中,电子-空穴激发可以探测局部原子环境。光谱的解释需要具有挑战性的理论计算,特别是在像液态水这样的系统中,量子多体效应和分子无序起着重要作用。理论和模拟的最新进展使得新的计算成为可能,这些计算与实验结果非常吻合,而无需采用通常采用的近似方法。基于这些计算,实验光谱中观察到的三个特征可以明确归因于具有不同特征相关长度的激子效应,这些特征受温度变化和/或同位素取代引起的氢键结构的扰动的影响是不同的。水结构的新图像与传统的四面体模型完全一致。