Abstract
It is widely believed that the emergence of slow glassy dynamics is encoded in a material's microstructure. First-principles theory [mode-coupling theory (MCT)] is able to predict the dramatic slowdown of the dynamics from only static two-point correlations as input, yet it cannot capture all of the observed dynamical behavior. Here we go beyond two-point spatial correlation functions by extending MCT systematically to include higher-order static and dynamic correlations. We demonstrate that only adding the static triplet direct correlations already qualitatively changes the predicted glass-transition diagram of binary hard spheres and silica. Moreover, we find a nontrivial competition between static triplet correlations that work to stabilize the glass state and dynamic higher-order correlations that destabilize it for both materials. We conclude that the conventionally neglected static triplet direct correlations as well as higher-order dynamic correlations are, in fact, non-negligible in both fragile and strong glassformers.
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CITATION STYLE
Luo, C., Robinson, J. F., Pihlajamaa, I., Debets, V. E., Royall, C. P., & Janssen, L. M. C. (2022). Many-Body Correlations Are Non-negligible in Both Fragile and Strong Glassformers. Physical Review Letters, 129(14). https://doi.org/10.1103/PhysRevLett.129.145501
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