(1) Reaction-diffusion model for zeolite catalysts
[1] Shichao Peng, Yiwei Xie, Linying Wang, Wenjuan Liu, Hua Li*, Zhaochao Xu, Mao Ye*, Zhongmin Liu, Exploring the inter- and intra-crystal diversity of surface barriers in zeolites on mass transport by using super-resolution microimaging of time-resolved guest profiles, Angew. Chem. Int. Ed. 2022, https://doi.org/10.1002/anie.202203903
[2] Shichao Peng, Hua Li*, Wenjuan Liu, Junyi Yu, Zhaochao Xu, Mao Ye*, Zhongmin Liu, Reaction rate enhancement by reducing surface diffusion barriers of guest molecules over ZSM-5 zeolites: a structured illumination microscopy study, Chem. Eng. J. 2022, 430, 132760.
[3] Mingbin Gao, Hua Li*, Mao Ye*, Zhongmin Liu, An approach for predicting intracrystalline diffusivities and adsorption entropies in nanoporous crytalline materials, AIChE J., 2020, 66:e16991.
[4] Mingbin Gao#, Hua Li#, Miao Yang, Shushu Gao, Pengfei Wu, Peng Tian, Shutao Xu, Mao Ye*, Zhongmin Liu*, Direct quantification of surface barriers for mass transfer in nanoporous crystalline materials, Communications Chemistry, 2019, 2: 43.
[5] Hua Li, Xiaoshuai Yuan, Mingbin Gao, Mao Ye*, Zhongmin Liu, Study of Catalyst Coke Distribution Based on Population Balance Theory: Application to Methanol to Olefins Process , AIChE J., 2019, 65(4): 1149-1161.
[6] Xiaoshuai Yuan, Hua Li*, Mao Ye*, Zhongmin Liu, Kinetic modeling of methanol to olefins process over SAPO-34 catalyst based on the dual-cycle reaction mechanism, AIChE J., 2019,65(2): 662-674.
[7] Hua Li, Mao Ye*, Zhongmin Liu, A multi-region model for reaction-diffusion process within a porous catalyst pellet, Chem. Eng. Sci., 2016, 147: 1-12.