论文著作:
[1]Yunlei Zhang, Pei Jin, Meng Liu, et al. A novel route for green conversion of cellulose to HMF by integrating enzymatic and chemical cascade reactions. AIChE Journal, 2017, 63: 4920-4932.
[2]Yunlei Zhang, Yiran Liu, Qinghua Xia, et al. Ambient temperature catalyzed air-oxidation of 5-hydroxymethylfurfural via ternary metal and oxygen vacancies. Green Energy & Environment, 2025, DOI: 10.1016/j.gee.2025.02.003.
[3]Wen Guan, Yao Chen, Yunlei Zhang*, et al. Carbon-shell-encapsulated gold-palladium nanoreactors for highly efficient 5-hydroxymethylfurfural oxidation: Confinement and alloy effects study. Chemical Engineering Science, 2024, 286: 119666.
[4]Wen Guan, Tingfeng Fang, Yunlei Zhang*, et al. A perspective on nitrogen-doped carbon in 5-hydroxymethylfurfural oxidation. Green Chemistry, 2024, 26 (6): 3139-3145.
[5]Yanan Wei, Jianming Pan, Yunlei Zhang*, et al. Electron structure tuned oxygen vacancy-rich AuPd/CeO2 for enhancing 5-hydroxymethylfurfural oxidation. ChemSusChem, 2024, 17 (9): e202400241.
[6]Yunlei Zhang, Yiran Liu, Wen Guan, et al. Strong metal-support interaction between AuPd nanoparticles and oxygen-rich defect ZrO2 for enhanced catalytic 5-hydroxymethylfurfural oxidation. Chinese Chemical Letters, 2024, 35 (2): 108932.
[7]Yunlei Zhang, Changhao Yan, Xu Yan, et al. High-efficient microwave-assisted conversion of fructose to 5-hydroxyme-thylfurfural over rice straw-derived sulfonated porous carbonaceous catalyst. Fuel, 2024, 373: 132348.
[8]Yiran Liu, Yao Chen, Yunlei Zhang*, et al. Oxygen vacancy-driven strong metal-support interactions on AuPd/TiO2 catalysts for high-efficient air-oxidation of 5-hydroxymethylfurfural. Chemical Engineering Journal, 2023, 476: 146874.
[9]Yao Chen, Lu Sun, Yunlei Zhang*, et al. Oxygen vacancy-induced metal-support interactions in AuPd/ZrO2 catalysts for boosting 5-hydroxymethylfurfural oxidation. Inorganic Chemistry, 2023, 62 (37): 15277-15292.
[10]Yunlei Zhang, Yu Cao, Changhao Yan, et al. Rationally designed Au-ZrOx interaction for boosting 5-hydroxymethylfurfural oxidation. Chemical Engineering Journal, 2023, 459: 141644.
[11]Wen Guan, Changhao Yan, Yunlei Zhang*, et al. Base-free aerobic oxidation of furfuralcohols and furfurals to furancarboxylic acids over nitrogen-doped carbon-supported AuPd bowl-like Catalyst. ChemSusChem, 2022, 15 (16): e202201041.
[12]Yanan Wei, Yunlei Zhang*, Yao Chen, et al. Crystal faces-tailored oxygen vacancy in Au/CeO2 catalysts for efficient oxidation of HMF to FDCA. ChemSusChem, 2022, 15 (13): e202101983.
[13]Wen Guan, Yunlei Zhang*, Yao Chen, et al. Hierarchical porous bowl-like nitrogen-doped carbon supported bimetallic AuPd nanoparticles as nanoreactors for high efficient catalytic oxidation of HMF to FDCA. Journal of Catalysis, 2021, 396: 40-53.
[14]Yunlei Zhang*, Qingang Xiong, Yao Chen, et al. Ceria and sulfated zirconia incorporated SBA-15 catalysts toward glucose conversion to HMF in a green isopropanlo-mediated system. Industrial & Engineering Chemistry Research, 2018, 57: 1968-1979.
[15]Yunlei Zhang, Yao Chen, Jianming Pan, et al. Synthesis and evaluation of acid-base bi-functionalized SBA-15 catalyst for biomass energy conversation. Chemical Engineering Journal 2017, 313: 1593-1606.
[16]Yunlei Zhang, Jianming Pan, Yao Chen, et al. HIPEs template: Towards the synthesis of polymeric catalysts with sdjustable porous structure, acid-base strength and wettability for biomass energy conversation. Chemical Engineering Journal, 2016, 283: 956-970.
[17]Yunlei Zhang, Yating Shen, Yao Chen, et al. Hierarchically carbonaceous catalyst with Brønsted-Lewis acid sites prepared through Pickering HIPEs templating for biomass energy conversation. Chemical Engineering Journal, 2016, 294: 222-235.
[18]Yunlei Zhang, Jianming Pan, Yating Shen, et al. Brønsted acidic polymer nanotubes with tunable wettability toward efficient conversion of one-pot cellulose to 5-hydroxymethylfurfural. ACS Sustainable Chemistry & Engineering, 2015, 3: 871-879.