[1] Liu Y, Cao X, Yue L, et al. Foliar-applied cerium oxide nanomaterials improve maize yield under salinity stress: Reactive oxygen species homeostasis and rhizobacteria regulation. Environmental Pollution, 2022, 299: 118900. [2] Liu Y, Xiao Z, Chen F, et al. Metallic oxide nanomaterials act as antioxidant nanozymes in higher plants: Trends, meta-analysis, and prospect. Science of the Total Environment, 2021, 780: 146578. [3] Liu Y, Yue L, Wang C, et al. Photosynthetic response mechanisms in typical C3 and C4 plants upon La2O3 nanoparticle exposure. Environmental Science: Nano, 2020, 7(1): 81~92. [4] Liu Y, Yue L, Wang Z, et al. Processes and mechanisms of photosynthesis augmented by engineered nanomaterials. Environmental Chemistry, 2019, 16 (6): 430~445. [5] Liu Y, Xu L, Dai Y. Phytotoxic effects of lanthanum oxide nanoparticles on maize (Zea mays L.). IOP Conference Series: Earth and Environmental Science, 2018, 113:012020. [6] Xiao Z, Yue L, Wang C, Chen F, Ding Ying, Liu Y, et al. Downregulation of the photosynthetic machinery and carbon storage signaling pathways mediate La2O3 nanoparticle toxicity on radish taproot formation. Journal of Hazardous Materials, 2021, 411: 124971. [7] Wang C, Cheng B, Yue L, Chen F, Cao X, Liu Y, et al. Fluorescent g-C3N4 nanosheets enhanced photosynthetic efficiency in maize. NanoImpact, 2021, 24: 100363. [8] 朱立祺, 陈菲然, 陶梦娜, 刘璎琳等. 人工纳米材料增强植物耐盐性的机理研究. 环境科学研究, 2022, 1~17. |