论文著作:
[1]. Xu Q.Q., Su K.X., Chen J.Y., Zhong Y.H.*, Zhao Y.X., Sun M., Yu L.*, Bismuth oxycarbonates loaded on nitrogen-doped carbon: an efficient nanocomposite catalyst for electrochemical reduction of CO2 to formate, Nanoscale (2025) Online. https://doi.org/10.1039/D4NR05343E
[2]. Lin S.T., Zhang X.L., Chen Y.Z., Zhong Y.H.*, Cheng G., Yu L., High-dispersed single-atom Fe on N-doped biochar for efficient degradation of organic contaminants by activating peroxymonosulfate, Solid State Sciences 162 (2025) 107860. https://doi.org/10.1016/j.solidstatesciences.2025.107860
[3]. Cao L.L., Huang J., Wu X.Y., Xu Q.Q., Su K.X., Zhong Y.H.*, Sun M., Yu L.*, Boosting and stabilizing the electrocatalytic reduction of carbon dioxide on Bi2O2CO3 via surface modification with p-aminobenzoic acid, Applied Catalysis B: Environment and Energy 358 (2024) 124451. https://doi.org/10.1016/j.apcatb.2024.124451
[4]. Wang Z.Y., Chen J.F., Zhong Y.H.*, Guo Y.K., Sun M., Yu L.*, Improving SO2 tolerance and low-temperature denitrification performance in NH3-SCR catalysis: A comprehensive study on Nb and Mn modified CeO2 catalysts, Journal of Environmental Chemical Engineering 12 (2024) 114242. https://doi.org/h10.1016/j.jece.2024.114242
[5]. Cao L.L., Huang J., Wu X.Y., Ma B., Xu Q.Q., Zhong Y.H.*, Wu Y., Sun M., Yu L., Active-site stabilized Bi metal-organic framework-based catalyst for highly active and selective electroreduction of CO2 to formate over a wide potential window, Nanoscale 15 (2023) 19522-19532 (Back Cover). https://doi.org/10.1039/D3NR04962K
[6]. Xu J.Y., Chen J.X., Zhong Y.H.*, Cao L.L., Zhang X.L., Wang Z.Y., Chen J.F., Lin S.T., Xu Q.Q., Chen Y.Z., Yu L., Ultrathin MoS2 nanosheet-wrapped Fe3O4 nanocrystals synergistically activate peroxymonosulfate for enhanced removal of organic pollutants, Colloids and Surfaces A: Physicochemical and Engineering Aspects 671 (2023) 131599. https://doi.org/10.1016/j.colsurfa.2023.131599
[7]. Chen J.X., Xu J.Y., Zhong Y.H.*, Cao L.L., Ren L., Zhang X.L., Wang Z.Y., Chen J.F., Lin S.T., Xu Q.Q., Chen Y.Z., MoS2 nanoflowers decorated with single Fe atoms catalytically boost the activation properties of peroxymonosulfate, Colloids and Surfaces A: Physicochemical and Engineering Aspects 665 (2023) 131173 (Front Cover). https://doi.org/10.1016/j.colsurfa.2023.131173
[8]. Zhou E.G., Liu Y., Yuan H.J., Cheng X.L.*, Zhong Y.H.*, He J.B., Lu X., Mechanism of Sodium Dodecyl Diphenyl Ether Disulfonate Filled Hydrotalcite Inhibiting the Photo-Degradation of Polyvinyl Chloride under Different Ranges of Ultraviolet Wavelength Irradiation, Coatings 13 (2023) 985. https://doi.org/10.3390/coatings13060985
[9] Zhang X.L., Lin S.T., Chen Y.Z., Huang Q.H., Zhong Y.H.*, Highly efficient co-catalytic activation of peroxomonosulfate by hybrid-phase 1T/2H-MoS2 nanoflowers combined with Fe2+ in the Fenton-like process, Materials Letters 353 (2023) 135329. https://doi.org/10.1016/j.matlet.2023.135329
[10]. Ren L., Zhong Y.H.*, Xu J.Y., Chen J.X., Zou T., Liao X.-L., Chen Z.-F., Yu L.*, Nano Fe3-xCuxO4 as the heterogeneous catalyst in an advanced oxidation process for excellent peroxymonosulfate activation toward climbazole degradation, Chemical Engineering Journal 439 (2022) 135553. https://doi.org/10.1016/j.cej.2022.135553
[11]. Bao Z.-Z., Chen Z.-F., Zhong Y.H., Wang G.Z., Qi Z.H., Cai Z.W., Adsorption of phenanthrene and its monohydroxy derivatives on polyvinyl chloride microplastics in aqueous solution: Model fitting and mechanism analysis, Science of The Total Environment 764 (2021) 142889. https://doi.org/ 10.1016/j.scitotenv.2020.142889
[12]. Wei W.-W.#, Zhong Y.H.# (Co-first author), Zou T., Chen X.-F., Ren L., Qi Z.H., Liu G.G., Chen Z.-F., Cai Z.W., Fe3O4-assisted laser desorption ionization mass spectrometry for typical metabolite analysis and localization: Influencing factors, mechanisms, and environmental applications, Journal of hazardous materials 388 (2020) 121817. https://doi.org/10.1016/j.jhazmat.2019.121817
[13]. Zhong Y.H., Chen Z.F., Yan S.C., Wei W.W., Zhang Q.X., Liu G.G., Cai Z.W., Yu L., Photocatalytic transformation of climbazole and 4-chlorophenol formation using a floral array of chromium-substituted magnetite nanoparticles activated with peroxymonosulfate, Environmental Science: Nano 6 (2019) 2986-2999 (Inside Back Cover). https://doi.org/10.1039/c9en00673g
[14]. Zhong Y.H., Chen Z.-F., Dai X.X., Liu S.-S., Zheng G.M., Zhu X.P., Liu S.G., Yin Y., Liu G.G., Cai Z.W., Investigation of the interaction between the fate of antibiotics in aquafarms and their level in the environment, Journal of Environmental Management 207 (2018) 219-229. https://doi.org/10.1016/j.jenvman.2017.11.030
[15]. Zhong Y.H., Gu Y., Yu L., Cheng G., Yang X.B., Sun M., He B.B., APTES-functionalized Fe3O4 microspheres supported Cu atom-clusters with superior catalytic activity towards 4-nitrophenol reduction, Colloids and Surfaces A-Physicochemical and Engineering Aspects 547 (2018) 28-36. https://doi.org/10.1016/j.colsurfa.2018.03.015
[16]. Zhong Y.H., Yu L., Chen Z.-F., He H.P., Ye F., Cheng G., Zhang Q.X., Microwave-assisted synthesis of Fe3O4 nanocrystals with predominantly exposed facets and their heterogeneous UVA/Fenton catalytic activity, ACS Applied Materials & Interfaces 9 (2017) 29203-29212. https://doi.org/10.1021/acsami.7b06925
[17]. Zhong Y.H., Chen Z.F., Liu S.S., Dai X.X., Zhu X.P., Zheng G.M., Liu S.G., Liu G.G., Cai Z.W., Analysis of azole fungicides in fish muscle tissues: Multi-factor optimization and application to environmental samples, Journal of Hazardous Materials 324 (2017) 535-543. https://doi.org/10.1016/j.jhazmat.2016.11.024
[18]. He H.P., Zhong Y.H., Liang X.L., Tan W., Zhu J.X., Wang C.Y., Natural magnetite: an efficient catalyst for the degradation of organic contaminant, Scientific Reports 5 (2015) 10139. https://doi.org/10.1038/srep10139
[19]. Zhong Y.H., Liang X.L., He Z.S., Tan W., Zhu J.X., Yuan P., Zhu R.L., He H.P., The constraints of transition metal substitutions (Ti, Cr, Mn, Co and Ni) in magnetite on its catalytic activity in heterogeneous Fenton and UV/Fenton reaction: From the perspective of hydroxyl radical generation, Applied Catalysis B-Environmental 150-151 (2014) 612-618. https://doi.org/10.1016/j.apcatb.2014.01.007
[20]. Zhong Y.H., Liang X.L., He Z.S., Tan W., He H.P., Zhu R.L., Zhong Y., Zhu J.X., Yuan P., Jiang Z., The UV/Fenton Degradation of Tetrabromobisphenol A Catalyzed by Nanocrystalline Chromium Substituted Magnetite, Journal of Nanoscience and Nanotechnology 14 (2014) 7307-7314. https://doi.org/10.1166/jnn.2014.8967
[21]. Zhong Y.H., Liang X.L., Tan W., Zhong Y., He H.P., Zhu J.X., Yuan P., Jiang Z., A comparative study about the effects of isomorphous substitution of transition metals (Ti, Cr, Mn, Co and Ni) on the UV/Fenton catalytic activity of magnetite, Journal of Molecular Catalysis A-Chemical 372 (2013) 29-34. https://doi.org/10.1016/j.molcata.2013.01.038
[22]. Zhong Y.H., Liang X.L., Zhong Y., Zhu J.X., Zhu S.Y., Yuan P., He H.P., Zhang J., Heterogeneous UV/Fenton degradation of TBBPA catalyzed by titanomagnetite: catalyst characterization, performance and degradation products, Water Research 46 (2012) 4633-44. https://doi.org/10.1016/j.watres.2012.06.025
发明专利:
[1]. 钟远红, 余林, 陈智锋, 叶飞, 程高, 一种可控合成不同微观形貌纳米磁铁矿的方法,2018年授权, 中国, 第一发明人, 授权专利号: ZL 201710014994.6.
[2]. 钟远红, 余林, 陈智锋, 叶飞, 徐斌, 一种含铬磁铁矿纳米棒的制备方法及其异相UVA-LED/Fenton催化性能应用, 2019年授权, 中国, 第一发明人, 授权专利号: ZL 201710014995.0.
[3]. 钟远红, 陈锦锋, 任礼, 许静怡, 陈金旭, 余林, 一种纳米片自组装球状钼酸亚铁材料及其制备方法和应用, 2021-9-6, 中国, 第一发明人, 授权专利号: ZL202111036031.9.
[4]. 钟远红, 任礼, 黄琪晖, 陈智锋, 吴晓妍, 罗育红, 一种纳米含铜磁铁矿以及高效降解唑类杀菌剂的方法, 2024-12-20, 中国, 第一发明人, 授权专利号: CN202010691276.4.
[5]. 曹乐亮, 钟远红, 许清清, 程高, 苏凯璇, 一种有机配体修饰氧化铋催化剂及其制备方法和应用, 2023-10-20, 中国, 申请专利号 :CN2023102001088680
[6]. 钟远红, 周淼华, 陈颖芝, 余林, 孙明,何乐, 一种尖晶石型CuFeMnO4/棕榈蜡复合光热超疏水涂层的制备方法, 2025-03-28, 中国,申请专利号:CN2025103833161.
[7]. 余林, 王钊颖, 钟远红, 孙明, 刘武源, 杨润农, 高子涵, 程高, 一种铌锰铈固溶体复合氧化物脱硝催化剂及其制备方法与应用, 2022-06-30, 中国, 申请专利号:CN202210778777.5.
[8]. 余林, 陈锦锋, 钟远红, 王钊颖, 孙明, 程高, 一种Cu-SSZ-13负载的铁铌铈复合氧化物脱硝催化剂及其制备方法, 2024-06-26, 中国, 申请专利号:CN202410834925.X.
[9]. 余林, 陈颖芝, 钟远红, 孙明, 程高, 微纳结构二硫化钼的制备方法、基于二硫化钼疏水防覆冰涂料及其制备方法与应用, 2024-07-18, 中国, 申请专利号 :CN202410963808.3.