Zhaoru Sun
Temple University
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Zhaoru Sun.
Nature Chemistry | 2016
Jianwei Sun; Richard C. Remsing; Yubo Zhang; Zhaoru Sun; Adrienn Ruzsinszky; Haowei Peng; Zeng-hui Yang; Arpita Paul; Umesh V. Waghmare; Xifan Wu; Michael L. Klein; John P. Perdew
One atom or molecule binds to another through various types of bond, the strengths of which range from several meV to several eV. Although some computational methods can provide accurate descriptions of all bond types, those methods are not efficient enough for many studies (for example, large systems, ab initio molecular dynamics and high-throughput searches for functional materials). Here, we show that the recently developed non-empirical strongly constrained and appropriately normed (SCAN) meta-generalized gradient approximation (meta-GGA) within the density functional theory framework predicts accurate geometries and energies of diversely bonded molecules and materials (including covalent, metallic, ionic, hydrogen and van der Waals bonds). This represents a significant improvement at comparable efficiency over its predecessors, the GGAs that currently dominate materials computation. Often, SCAN matches or improves on the accuracy of a computationally expensive hybrid functional, at almost-GGA cost. SCAN is therefore expected to have a broad impact on chemistry and materials science.
Proceedings of the National Academy of Sciences of the United States of America | 2017
Mohan Chen; Hsin-Yu Ko; Richard C. Remsing; Marcos F. Calegari Andrade; Biswajit Santra; Zhaoru Sun; Annabella Selloni; Roberto Car; Michael L. Klein; John P. Perdew; Xifan Wu
Significance Water is vital to our everyday life, but its structure at a molecular level is still not fully understood from either experiment or theory. The latter is hampered by our inability to construct a purely predictive, first principles model. The difficulty in modeling water lies in capturing the delicate interplay among the many strong and weak forces that govern its behavior and phase diagram. Herein, molecular simulations with a recently proposed nonempirical quantum mechanical approach (the SCAN density functional) yield an excellent description of the structural, electronic, and dynamic properties of liquid water. SCAN (strongly constrained and appropriately normed)-based approaches, which describe diverse types of bonds in materials on an equal, accurate footing, will likely enable efficient and reliable modeling of aqueous phase chemistry. Water is of the utmost importance for life and technology. However, a genuinely predictive ab initio model of water has eluded scientists. We demonstrate that a fully ab initio approach, relying on the strongly constrained and appropriately normed (SCAN) density functional, provides such a description of water. SCAN accurately describes the balance among covalent bonds, hydrogen bonds, and van der Waals interactions that dictates the structure and dynamics of liquid water. Notably, SCAN captures the density difference between water and ice Ih at ambient conditions, as well as many important structural, electronic, and dynamic properties of liquid water. These successful predictions of the versatile SCAN functional open the gates to study complex processes in aqueous phase chemistry and the interactions of water with other materials in an efficient, accurate, and predictive, ab initio manner.
Journal of Chemical Physics | 2018
Lixin Zheng; Mohan Chen; Zhaoru Sun; Hsin-Yu Ko; Biswajit Santra; Pratikkumar Dhuvad; Xifan Wu
We perform ab initio molecular dynamics (AIMD) simulation of liquid water in the canonical ensemble at ambient conditions using the strongly constrained and appropriately normed (SCAN) meta-generalized-gradient approximation (GGA) functional approximation and carry out systematic comparisons with the results obtained from the GGA-level Perdew-Burke-Ernzerhof (PBE) functional and Tkatchenko-Scheffler van der Waals (vdW) dispersion correction inclusive PBE functional. We analyze various properties of liquid water including radial distribution functions, oxygen-oxygen-oxygen triplet angular distribution, tetrahedrality, hydrogen bonds, diffusion coefficients, ring statistics, density of states, band gaps, and dipole moments. We find that the SCAN functional is generally more accurate than the other two functionals for liquid water by not only capturing the intermediate-range vdW interactions but also mitigating the overly strong hydrogen bonds prescribed in PBE simulations. We also compare the results of SCAN-based AIMD simulations in the canonical and isothermal-isobaric ensembles. Our results suggest that SCAN provides a reliable description for most structural, electronic, and dynamical properties in liquid water.
Physical Review B | 2017
Zhaoru Sun; Mohan Chen; Lixin Zheng; Jianping Wang; Biswajit Santra; Huaze Shen; Limei Xu; Wei Kang; Michael L. Klein; Xifan Wu
Oxygen K-edge X-ray absorption spectra of liquid water are computed based on the configurations from advanced ab initio molecular dynamics simulations, as well as an electron excitation theory from the GW method. One one hand, the molecular structures of liquid water are accurately predicted by including both van der Waals interactions and hybrid functional (PBE0). On the other hand, the dynamic screening effects on electron excitation are approximately described by the recently developed enhanced static Coulomb hole and screened exchange approximation by Kang and Hybertsen [Phys. Rev. B 82, 195108 (2010)]. The resulting spectra of liquid water are in better quantitative agreement with the experimental spectra due to the softened hydrogen bonds and the slightly broadened spectra originating from the better screening model.
Frontiers of Physics in China | 2018
Huaze Shen; Mohan Chen; Zhaoru Sun; Limei Xu; Enge Wang; Xifan Wu
Physical Review Letters | 2018
Zhaoru Sun; Lixin Zheng; Mohan Chen; Michael L. Klein; Francesco Paesani; Xifan Wu
Bulletin of the American Physical Society | 2018
Liying Zhou; Zhaoru Sun; Limei Xu; Xifan Wu
Bulletin of the American Physical Society | 2018
Zhaoru Sun; Lixin Zheng; Mohan Chen; Francesco Paesani; Xifan Wu
Bulletin of the American Physical Society | 2017
Zhaoru Sun; Mohan Chen; Xifan Wu
Bulletin of the American Physical Society | 2017
Lixin Zheng; Zhaoru Sun; Xifan Wu