Yunrui Duan
Shandong University
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Publication
Featured researches published by Yunrui Duan.
Scientific Reports | 2016
Tao Li; Jie Li; Long Wang; Yunrui Duan; Hui Li
Molecular dynamics simulations were performed to investigate the wetting and coalescence of liquid Al and Pb drops on four carbon-based substrates. We highlight the importance of the microstructure and surface topography of substrates in the coalescence process. Our results show that the effect of substrate on coalescence is achieved by changing the wettability of the Pb metal. Additionally, we determine the critical distance between nonadjacent Al and Pb films required for coalescence. These findings improve our understanding of the coalescence of immiscible liquid metals at the atomistic level.
Chinese Physics B | 2017
Xuyan Zhou; Yunrui Duan; Long Wang; Sida Liu; Tao Li; Yifan Li; Hui Li
Molecular dynamics (MD) simulations are performed to explore the layering structure and liquid–liquid transition of liquid water confined between two graphene sheets with a varied distance at different pressures. Both the size of nanoslit and pressure could cause the layering and liquid–liquid transition of the confined water. With increase of pressure and the nanoslits size, the confined water could have a more obvious layering. In addition, the neighboring water molecules firstly form chain structure, then will transform into square structure, and finally become triangle with increase of pressure. These results throw light on layering and liquid–liquid transition of water confined between two graphene sheets.
Physical Chemistry Chemical Physics | 2018
Yunrui Duan; Jie Li; Tao Li; Xingfan Zhang; Zhichao Wang; Hui Li
Confinement presents the opportunity for novel structural transition scenarios not observed in three-dimensional systems. Here, we report a comprehensive molecular dynamic (MD) study of the structural phase transition induced by density for an ordinary metal copper (Cu) confined between two parallel panel walls. At 4.19 g cm-3 < ρ < 4.66 g cm-3, a notable structural phase transition occurs between the triangle unit cell structure and quasi-square unit cell structure upon densification. Both the bond order parameter (BOP) and angular distribution function (ADF) can provide evidence for the transition. We highlight the fact that when the sole decrease of the atom distance cannot adapt to the further densification, the system starts to adjust the neighboring bond angle and promote the layering transition, thus inducing the structural phase transition. At the metastable coexistence zone, the viscosity exhibits a remarkable drop and the diffusion coefficient shows a notable increase, both facilitating the accomplishment of the structural transition. Our results will trigger more interest on the phase transition under confinement in a metallic system.
Molecules | 2018
Junjun Wang; Tao Li; Yifan Li; Yunrui Duan; Yanyan Jiang; Hamidreza Arandiyan; Hui Li
Molecular dynamics (MD) simulation has been employed to study the wetting transitions of liquid gallium droplet on the graphene surfaces, which are decorated with three types of carbon nanopillars, and to explore the effect of the surface roughness and morphology on the wettability of liquid Ga. The simulation results showed that, at the beginning, the Ga film looks like an upside-down dish on the rough surface, different from that on the smooth graphene surface, and its size is crucial to the final state of liquid. Ga droplets exhibit a Cassie–Baxter (CB) state, a Wenzel state, a Mixed Wetting state, and a dewetting state on the patterned surfaces by changing distribution and the morphology of nanopillars. Top morphology of nanopillars has a direct impact on the wetting transition of liquid Ga. There are three transition states for the two types of carbon nanotube (CNT) substrates and two for the carbon nanocone (CNC) one. Furthermore, we have found that the substrates show high or low adhesion to the Ga droplet with the variation of their roughness and top morphology. With the roughness decreasing, the adhesion energy of the substrate decreases. With the same roughness, the CNC/graphene surface has the lowest adhesion energy, followed by CNT/graphene and capped CNT/graphene surfaces. Our findings provide not only valid support to previous works but also reveal new theories on the wetting model of the metal droplet on the rough substrates.
Chinese Physics B | 2017
Zhenyang Zhao; Tao Li; Yunrui Duan; Zhichao Wang; Hui Li
Molecular dynamics (MD) simulations are performed to investigate the wettability of liquid metal on the metal substrate. Results show that there exists different wettability on the different metal substrates, which is mainly determined by the interaction between the liquid and the substrate. The liquid metal is more likely to wet the same kind of metal substrate, which attracts the liquid metal to one side on the hybrid substrate. Exchanging the liquid metal and substrate metal has no effect on the wettability between these two metals. Moreover, the study of metal drop coalescing indicates that the metal substrate can significantly affect the coalescence behavior, in which the changeable wettability of liquid metal plays a predominant role. These studies demonstrate that the wetting behavior of liquid metal can be controlled by choosing the suitable metal substrate.
Nanoscale | 2016
Sida Liu; Xuyan Zhou; Weikang Wu; Xiangzhen zhu; Yunrui Duan; Hui Li; Xin Wang
Computational Materials Science | 2018
Tao Li; Yunrui Duan; Junjun Wang; Zhichao Wang; Jie Li; Yifan Li; Hui Li
Nanoscale | 2016
Xuyan Zhou; Sida Liu; Long Wang; Yifan Li; Weikang Wu; Yunrui Duan; Hui Li
Computational Materials Science | 2018
Yunrui Duan; Jie Li; Tao Li; Zhichao Wang; Hui Li
Chinese Physics B | 2017
Yunrui Duan; Tao Li; Weikang Wu; Jie Li; Xuyan Zhou; Sida Liu; Hui Li