| [1] | LOBELL D B, CASSMAN K G, FIELD C B. Crop yield gaps: their importance, magnitudes, and causes[J]. Annual review of environment and resources, 2009, 34(1):179-204.  doi: 10.1146/energy.2009.34.issue-1    
																																					URL
 | 
																													
																						| [2] | LOWRY G V, AVELLAN A, GILBERTSON L M. Opportunities and challenges for nanotechnology in the agri-tech revolution[J]. Nature nanotechnology, 2019, 14(6):517-522.  doi: 10.1038/s41565-019-0461-7    
																																																	pmid: 31168073
 | 
																													
																						| [3] | KAH M, TUFENKjI N, WHITE J C. Nano-enabled strategies to enhance crop nutrition and protection[J]. Nature nanotechnology, 2019, 14(6):532-540.  doi: 10.1038/s41565-019-0439-5    
																																																	pmid: 31168071
 | 
																													
																						| [4] | RANGASAMY K, ATHIAPPAN M, DEVARAjAN N,  et al. Emergence of multi drug resistance among soil bacteria exposing to insecticides[J]. Microbial pathogenesis, 2017, 105:153-165.  doi: S0882-4010(17)30091-8    
																																																	pmid: 28192223
 | 
																													
																						| [5] | DOGUTAN D K, NOCERA D G. Artificial photosynthesis at efficiencies greatly exceeding that of natural photosynthesis[J]. Accounts of chemical research, 2019, 52(11):3143-3148.  doi: 10.1021/acs.accounts.9b00380    
																																																	pmid: 31593438
 | 
																													
																						| [6] | GUST D, MOORE T A, MOORE A L. Solar fuels via artificial photosynthesis[J]. Accounts of chemical research, 2009, 42(12):1890-1898.  doi: 10.1021/ar900209b    
																																																	pmid: 19902921
 | 
																													
																						| [7] | ALI S A, AHMAD T. Treasure trove for efficient hydrogen evolution through water splitting using diverse perovskite photocatalysts[J]. Materials today chemistry, 2023, 29:101387.  doi: 10.1016/j.mtchem.2023.101387    
																																					URL
 | 
																													
																						| [8] | SUN G, CAI L, CUI H,  et al. Naphthalenyl-phenylacrylonitrile-based supramolecular aqueous artificial light-harvesting system for photochemical catalysis[J]. Dyes and pigments, 2022, 201:110257.  doi: 10.1016/j.dyepig.2022.110257    
																																					URL
 | 
																													
																						| [9] | YAO R, LI Y, CHEN Y,  et al. Rare-earth elements can structurally and energetically replace the calcium in a synthetic Mn4CaO4-cluster mimicking the oxygen-evolving center in photosynthesis[J]. Journal of the American chemical society, 2021, 143(42):17360-17365.  doi: 10.1021/jacs.1c09085    
																																					URL
 | 
																													
																						| [10] | HUANG M, WANG T, WU Z,  et al. Rational fabrication of cadmium-sulfide/graphitic-carbon-nitride /hematite photocatalyst with type II and Z-scheme tandem heterojunctions to promote photocatalytic carbon dioxide reduction[J]. Journal of colloid and interface science, 2022, 628:129-140.  doi: 10.1016/j.jcis.2022.08.059    
																																					URL
 | 
																													
																						| [11] | CHEN X M, CHEN X, HOU X F,  et al. Self-assembled supramolecular artificial light-harvesting nanosystems: construction, modulation, and applications[J]. Nanoscale advances, 2022, 5:1830-1852.  doi: 10.1039/D2NA00934J    
																																					URL
 | 
																													
																						| [12] | HE X, ZHANG S, QI S,  et al. Enhanced excimer fluorescence emission of pyrene derivatives: applications in artificial light-harvesting systems[J]. Dyes and pigments, 2023, 209:110933.  doi: 10.1016/j.dyepig.2022.110933    
																																					URL
 | 
																													
																						| [13] | WANG Z, ZHANG Y, ZHANG S, et al. Yang. Natural xylose-derived carbon dots towards efficient semi-artificial photosynthesis[J]. Journal of colloid and interface science, 2023, 629:12-21.  doi: 10.1016/j.jcis.2022.09.044    
																																					URL
 | 
																													
																						| [14] | MA X, YUE J, QIAO B,  et al. A novel fluorescent self-assembling material with gel properties: ion recognition and energy transfer[J]. Polymer chemistry, 2022, 13(22):3270-3274.  doi: 10.1039/D2PY00356B    
																																					URL
 | 
																													
																						| [15] | TEI F, NEVEB S D, HAANC J D. Nitrogen management of vegetable crops[J]. Agricultural water management, 2020,240,106316. | 
																													
																						| [16] | 许丹阳, 李虹颖, 孙义祥, 等. 不同比例有机无机肥配施对水稻产量与氮素利用率的影响[J]. 中国农学通报, 2022, 38(31):1-5.  doi: 10.11924/j.issn.1000-6850.casb2021-1087
 | 
																													
																						| [17] | 陈桢禄, 潘晓英, 卢钰升, 等. 有机无机复配调理剂对酸化土壤性状和烟叶产质量的影响[J]. 中国农学通报, 2023, 39(3):28-34.  doi: 10.11924/j.issn.1000-6850.casb2022-0096
 | 
																													
																						| [18] | KIHAL N, NAZEMI A, BOURGAULT S. Supramolecular nanostructures based on perylene diimide bioconjugates: from self-assembly to applications[J]. Nanomaterials, 2022, 12(7),1223. | 
																													
																						| [19] | WüRTHNER F, SAHA-MöLLER C R, FIMMEL B,  et al. Perylene bisimide dye assemblies as archetype functional supramolecular materials[J]. Chemical reviews, 2016, 116(3):962-1052.  doi: 10.1021/acs.chemrev.5b00188    
																																																	pmid: 26270260
 | 
																													
																						| [20] | LI J, LI P, FAN M,  et al. Chirality of perylene diimides: design strategies and applications[J]. Angewandte chemie international edition, 2022, 61(27):e202202532 | 
																													
																						| [21] | LI H N, ZHANG Y, CHEN B B,  et al. J‑Aggregation of perylene diimides in silica nanocapsules for stable[J] ACS applied bio materials, 2019,2,1569-1577. | 
																													
																						| [22] | 白宝璋, 金锦子, 白崧, 等. 玉米根系活力TTC测定法的改良[J]. 玉米科学, 1994, 4(11):44-47. | 
																													
																						| [23] | LIU Y, GUI Z, LIU J. Research progress of light wavelength conversion materials and their applications in functional agricultural films[J]. Polymers, 2022, 14(5):851.  doi: 10.3390/polym14050851    
																																					URL
 | 
																													
																						| [24] | LI H N, ZHANG Y, CHEN B B,  et al. J-Aggregation of perylene diimides in silica nanocapsules for stable[J]. ACS applied bio materials, 2019, 2:1569-1577.  doi: 10.1021/acsabm.8b00839    
																																					URL
 | 
																													
																						| [25] | PUNTORIERO F, GANGA G L, SARTOREL A,  et al. Photo-induced water oxidation with tetra-nuclear ruthenium sensitizer and catalyst: a unique 4×4 ruthenium interplay triggering high efficiency with low-energy visible light[J]. Chemical communications, 2010, 46(26):4725-4727.  doi: 10.1039/c0cc00444h    
																																					URL
 | 
																													
																						| [26] | SCHWAB F, ZHAI G, KERN M,  et al. Barriers, pathways and processes for uptake, translocation and accumulation of nanomaterials in plants-Critical review[J]. Nanotoxicology, 2016, 10(3):257-278.  doi: 10.3109/17435390.2015.1048326    
																																					URL
 | 
																													
																						| [27] | 郑文涛. 二氧化硅微胶囊改性载药水凝胶的制备及在大田油菜生产中的“伴侣”作用[D]. 武汉: 华中农业大学, 2022. | 
																													
																						| [28] | LIM Y J, KWON S J, EOM S H. Red and blue light-specific metabolic changes in soybean seedlings[J]. Frontiers in plant science, 2023, 14:1128001.  doi: 10.3389/fpls.2023.1128001    
																																					URL
 | 
																													
																						| [29] | AROCA R, PORCEL R, RUIZ-LOZANO J M. Regulation of root water uptake under abiotic stress conditions[J]. Journal of experimental botany, 2012, 63(1):43-57.  doi: 10.1093/jxb/err266    
																																																	pmid: 21914658
 | 
																													
																						| [30] | RYBTCHINSKI B, SINKS L E, Wasielewski M R. Combining light-harvesting and charge separation in a self-assembled artificial photosynthetic system based on perylenediimide chromophores[J]. Journal of the American chemical society, 2004, 126(39):12268-12269.  pmid: 15453751
 |