Planting density and grain filling are important cultivation practices and physiological processes that affect the yield and quality of indica-japonica hybrid rice. Elucidating how planting density influences the yield and quality of indica-japonica hybrid rice by regulating physiological processes such as grain filling, and revealing the relationships between grain filling characteristics and yield as well as quality, is of great significance. This study selected two indica-japonica hybrid rice varieties with different yield levels as experimental materials and conducted a two-year field experiment under four planting densities. The results showed that increasing the planting density of two indica-japonica hybrids affected photosynthesis, enzyme activities, and grain filling rate, reducing the brown rice rate, milled rice rate, head rice rate, protein content, and amylose content, while increasing chalkiness. However, the increase in tiller number enlarged the population and extended the grain filling duration. Consequently, the yield of the two hybrids increased significantly by 5.47%–11.38% and 4.76%–10.93%, respectively, and the taste values of superior grains (SG) and inferior grains (IG) increased by 0.83%–5.35%, 0.54%–2.45% and 0.96%–2.24%, 0.73%–2.65%, respectively. Analysis of the relationships between grain filling characteristics and yield as well as quality in indica-japonica hybrid rice revealed that a higher grain filling rate contributed to increases in brown rice rate, milled rice rate, head rice rate, protein content, and amylose content, while reducing chalkiness degree and chalky grain percentage. In contrast, a longer grain filling duration not only helped improve rice taste value but was also one of the main reasons for high yield.
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To increase the yield of indica-japonica hybrid rice, it is crucial to explore their photosynthetic and population characteristics at different yield levels and quantify their response to varying planting densities. In this study, a two-year field experiment was conducted to test two indica-japonica hybrid rice varieties with different yield potentials (12 t ha−1 and 15 t ha−1, respectively) at four planting densities (D1: 21 cm × 30 cm; D2: 18 cm × 30 cm; D3: 16 cm × 30 cm; D4: 14 cm × 30 cm). High yield indica-japonica hybrid rice was primarily charcterized by a high number of spikelets per panicle and a greater spikelet weight, which increased the single panicle’s weight. In addition, rational material translocation and a coordinated source-sink relationship contributed to dry matter accumulation. Open plant morphology optimized leaf enzyme activity at all stages, improved photosynthesis, and increased yield by 20.54%–21.60%. Increasing the planting density of indica-japonica hybrid rice somewhat restricted the growth of the rice population, leading to decreases in spikelets per panicle, 1000-grain weight, seed-setting rate, plant height, length of the top three leaves, leaf width, leaf angle, and the number of primary and secondary branches. However, the higher number of basic seedling resulted in more effective panicles and an increase in total spikelets, increasing the yield of each variety by 4.17%–8.48% and 2.39%–12.71%, respectively. Optimum dense planting of indica-japonica hybrid rice will benefit the sink capacity and a synergistic increase in both yield and economic benefit. This study offers crucial theoretical insights and practical significance for increasing indica-japonica hybrid rice yield and ensuring food security.
This study primarily aimed to enhance rice’s utilization efficiency of nitrate nitrogen, which is a crucial nutrient for plant growth and development. By exploring the effects of molybdenum nanoparticles on key enzyme activities involved in nitrogen metabolism and nitrate nitrogen accumulation in rice, we aimed to provide a scientific basis for the development of new strategies to improve the nitrogen use efficiency of rice. This is particularly important for enhancing rice production and quality, as nitrogen is often a limiting factor in rice growth and yield.
To achieve this objective, a hydroponic experiment was conducted using rice plants. The experiment consisted of nine treatments to comprehensively evaluate the effects of molybdenum nanoparticles and sodium molybdate on rice nitrogen metabolism and growth. The treatments were as follows: 1) no molybdenum application as the control group (CK); 2) sodium molybdate at a concentration of 50 μg Mo/L (T1); 3) sodium molybdate at a concentration of 100 μg Mo/L (T2); 4) sodium molybdate at a concentration of 200 μg Mo/L (T3); 5) sodium molybdate at a concentration of 400 μg Mo/L (T4); 6) molybdenum nanoparticles at a concentration of 50 μg Mo/L (T5); 7) molybdenum nanoparticles at a concentration of 100 μg Mo/L (T6); 8) molybdenum nanoparticles at a concentration of 200 μg Mo/L (T7); and 9) molybdenum nanoparticles at a concentration of 400 μg Mo/L (T8). Rice plants were grown in a hydroponic system and subjected to these different treatments to investigate the effects of molybdenum nanoparticles and sodium molybdate on key enzyme activities involved in nitrogen metabolism, nitrate nitrogen accumulation, nitrogen content in rice stems and leaves, and rice dry matter accumulation. Specifically, we measured the activities of three key enzymes involved in nitrogen metabolism: nitrate reductase (NR), glutamine synthetase (GS), and glutamate synthase (GOGAT). We also assessed the nitrogen content in rice stems and leaves, as well as rice dry matter accumulation, to evaluate the overall effects of molybdenum nanoparticles and sodium molybdate on rice growth and development.
The results of the experiment showed that molybdenum nanoparticles had a significantly greater promoting effect on the activities of NR, GS, and GOGAT in rice leaves compared with sodium molybdate at the same concentration. This indicated that molybdenum nanoparticles were more effective in enhancing the nitrogen metabolism of rice than sodium molybdate. Furthermore, both sodium molybdate and molybdenum nanoparticles promoted nitrogen content in rice stems and leaves, as well as rice dry matter accumulation. However, molybdenum nanoparticles showed significantly better promotion effects on dry matter accumulation in both above-ground and underground parts of rice than sodium molybdate. These findings suggest that molybdenum nanoparticles can improve the nitrogen absorption and utilization of rice and promote rice growth and development. By providing a new solution for enhancing rice production and quality, this study has promising application prospects in agricultural production. The use of molybdenum nanoparticles as a fertilizer additive or as a standalone nutrient source can potentially increase rice yields and improve rice quality, leading to increased food security and improved livelihoods for rice farmers.
Incorporating contemporary research issues into educational curricula is essential in bridging the gap between theoretical knowledge and practical application. This study is designed to integrate the emerging topic of “novel fertilizers” with the fundamental theories of soil science and fertilizer resource development. In particular, this study explores the efficacy of biochar-based zinc fertilizers in increasing the zinc content in rice grains, an essential micronutrient that is often deficient in common diets. Biochar, as a carbon-rich product derived from the pyrolysis of organic materials, is used in this experiment as a carrier for zinc to enhance the soil microenvironment around rice roots, facilitating the uptake of zinc into the rice plants.
This experiment involved the preparation of biochar-enriched zinc fertilizers and their application to rice paddy fields. The biochar was derived from wheat straw pyrolyzed at 600℃, and zinc oxide nanoparticles (nZnO) were loaded onto the biochar using zinc acetate as a precursor. XRD and SEM analyses confirmed the successful loading of nZnO onto the biochar surface. The pot experiment included eight treatments: (1) no biochar and nZnO (T1), (2) 20 t/ha biochar (T2), (3) 100 kg/ha nZnO (0.5%nZnO, T3), (4) 20 t/ha biochar + 100 kg/ha nZnO (BC+0.5%nZnO, T4), (5) 200 kg/ha nZnO (1.0%nZnO, T5), (6) 20 t/ha biochar + 200 kg/ha nZnO (BC+1.0%nZnO, T6), (7) 200 kg/ha nZnO (2.0%nZnO, T7), and (8) 20 t/ha biochar + 200 kg/ha nZnO (BC+2.0%nZnO, T8). Students measured rice growth, yield, and nutrient content in the plants and grains, analyzing zinc fertilizer utilization and the impact of biochar-based nano-zinc on soil nutrients. The subsequent analyses focused on the bioavailability of zinc in the rhizosphere, i.e., the root zone of the plants.
The results from this study indicate that the application of biochar-based zinc significantly improved the nutrient availability within the rhizosphere. The study observed that the concentration of available zinc in the root soils markedly increased, which, in turn, promoted the accumulation of zinc in both the rice plants and the harvested grains. This increment in zinc content is crucial, considering the role of zinc in enhancing immune function and overall human health. Further analysis confirmed that biochar-based nano-zinc exerted a considerable impact on the microenvironment of the root zone, modifying physical and chemical soil properties in a manner conducive to nutrient uptake. Statistical analysis employing advanced software tools supported these findings, demonstrating a clear trend of enhanced zinc accumulation due to the novel fertilizer application.
This study not only confirms the potential of biochar as an effective carrier for micronutrients like zinc but also illustrates the transformative impact of integrating innovative agricultural inputs with traditional farming practices. Through this study, students engaged in soil science, plant nutrition, agricultural chemical analysis, and related disciplines can enhance their ability to apply theoretical knowledge in analyzing and solving real-world agricultural challenges. In conclusion, the study highlights the significant potential for novel zinc-enriched biochar fertilizers to improve crop micronutrient density. This approach not only addresses the global challenge of micronutrient deficiencies in diets but also offers a sustainable and efficient strategy for resource utilization in agriculture. The experiment thus serves as a valuable model for educational practices, fostering a deeper understanding and practical skills among students in the field of agricultural science.
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