[1] 张焕军,王席席,李轶.水体中抗生素污染现状及其对氮转化过程的影响研究进展[J].环境化学,2022, 41(4): 1168-1181. DOI:10.7524/j.issn.0254-6108.2021102405. [2] Xiao Y W, Tian X, Chen Y H, et al. Recent advances in carbon nitride-based S-scheme photocatalysts for solar energy conversion[J]. Materials, 2023, 16(10): 3745. DOI:10.3390/ma16103745. [3] Zhong S F, Yang B, Xiong Q, et al. Hydrolytic transformation mechanism of tetracycline antibiotics: Reaction kinetics, products identification and determination in WWTPs[J]. Ecotoxicol Environ Saf, 2022, 229: 113063. DOI:10.1016/j.ecoenv.2021.113063. [4] 王丽敏,刘海涛,冯欣冉,等.氧化亚铜/还原氧化石墨烯复合材料的制备及其光催化性能研究[J].化工新型材料, 2024, 52(12): 183-189. DOI:10.19817/j.cnki.issn1006-3536.2024.12.026. [5] 张海丽,刘相尧,荆国林.氧化亚铜/生物质基复合材料的研究进展[J].化工新型材料, 2022, 50(8): 278-281.DOI: 10.19817/j.cnki.issn1006-3536.2022.08.053. [6] 何星存,梁伟夏,黄智,等.可见光响应的“Cu核-Cu2O壳”型光催化剂性能的研究[J].现代化工, 2005, 25(11): 38-40. [7] Li Z, Dai K, Zhang J F, et al. Facile synthesis of novel octahedral Cu2O/Ag3 PO4 composite with enhanced visible light photocatalysis[J]. Mater Lett, 2017, 206: 48-51. DOI:10.1016/j.matlet.2017.06.111. [8] Wei J, Yan C Q, Chen Y, et al. Investigation of α-Fe2O3 catalyst structure for efficient photocatalytic Fenton oxidation removal of antibiotics: preparation, performance, and mechanism[J]. RSC Adv, 2024, 14(24): 16649-16660. DOI:10.1039/D4RA02282C. [9] Baradaran S, Moghaddam E, Basirun W J, et al. Mechanical properties and biomedical applications of a nanotube hydroxyapatite-reduced graphene oxide composite[J]. Carbon, 2014, 69: 32-45. DOI:10.1016/j.carbon.2013.11.054. [10] Pervez M N, He W, Zarra T, et al. New sustainable approach for the production of Fe3O4/graphene oxide-activated persulfate system for dye removal in real wastewater[J]. Water, 2020, 12(3): 733. DOI:10.3390/w12030733. [11] Hummers W S Jr, Offeman R E. Preparation of graphitic oxide[J]. J Am Chem Soc, 1958, 80(6): 1339. DOI:10.1021/ja01539a017. [12] 田莉,关文宇,赵振宇,等.纳米晶体的晶型和暴露晶面对其环境行为和效应的影响[J].环境化学, 2021, 40(4): 999-1010. DOI:10.7524/j.issn.0254-6108.2019112602. [13] Çetinel A, Utlu G. Preparation and characterization of electrochemically deposited Cu2O/ZnO heterojunctions on porous silicon[J]. ACS Omega, 2023, 8(23): 20801-20809. DOI:10.1021/acsomega.3c01438. [14] Roy I, Bhattacharyya A, Sarkar G, et al. In situ synthesis of a reduced graphene oxide/cuprous oxide nanocomposite: a reusable catalyst[J]. RSC Adv, 2014, 4(94): 52044-52052. DOI:10.1039/c4ra08127g. [15] Šuligoj A, Grinberg D, Paz Y. Post-excitation transient IR phenomena in α-Fe2O3 films[J]. J Phys Chem C, 2021, 125(51): 28013-28024. DOI:10.1021/acs.jpcc.1c09118. [16] Lan M, Zhang D Y, Dong X L, et al. Novel Z-scheme CdS/CoMoO4 heterojunction with enhanced photocatalytic activity for efficient photocatalytic degradation of organic pollutants[J]. Water Air Soil Pollut, 2025, 236(12): 816. DOI:10.1007/s11270-025-08457-2. [17] Percivalle N M, Carofiglio M, Hernández S, et al. Ultra-fast photocatalytic degradation of Rhodamine B exploiting oleate-stabilized zinc oxide nanoparticles[J]. Discover Nano, 2024, 19(1): 126. DOI:10.1186/s11671-024-04077-7. [18] 刘欣,彭莉岚,冯鹏元,等.多元醇法形貌可控制备氧化亚铜微纳米颗粒[J].应用化学, 2018, 35(4): 469-476. [19] Wang J C, Zhang L, Fang W X, et al. Enhanced photoreduction CO2 activity over direct Z-scheme α-Fe2O3/Cu2O heterostructures under visible light irradiation[J]. ACS Appl Mater Interfaces, 2015, 7(16): 8631-8639. DOI:10.1021/acsami.5b00822. [20] Suave J, Amorim S M, Ângelo J, et al. TiO2/reduced graphene oxide composites for photocatalytic degradation in aqueous and gaseous medium[J]. J Photochem Photobiol A Chem, 2017, 348: 326-336. DOI:10.1016/j.jphotochem.2017.08.064. [21] Galán-González A, Fernández I, Zaluzec N J, et al. Fabrication of α-Fe2O3 nanoparticles/g-C3N4 direct Z-scheme heterojunction of durable photocatalytic activity[J]. ACS Appl Nano Mater, 2025, 8(18): 9364-9375. DOI:10.1021/acsanm.5c00991. |