NOVEL SUGAR- AND PHOSPHORUS-CONTAINING FERTILIZER
20230373873 · 2023-11-23
Assignee
Inventors
Cpc classification
International classification
Abstract
The present disclosure provides a novel sugar- and phosphorus-containing fertilizer. In the present disclosure, based on masses of carbon and phosphorus elements, the novel sugar- and phosphorus-containing fertilizer has a carbon-phosphorus ratio of (1-15):1, and includes a low-carbon type with a carbon-phosphorus ratio of (1-4):1 and a high-carbon type with a carbon-phosphorus ratio of (4-15):1; and a carbon source is any one or more selected from the group consisting of glucose, sucrose, sugarcane molasses, and beet molasses. The novel sugar- and phosphorus-containing fertilizer is applied to the soil by drip irrigation or furrow dressing, and improves a phosphorus utilization efficiency of crops by regulating an activity of inherent phosphorus-solubilizing microorganisms in the soil. After applying the novel sugar- and phosphorus-containing fertilizer in a plurality of test sites, the soil has strengthened respiration, a significantly improved phosphatase activity, an obviously increased water-soluble phosphorus concentration, and remarkably enhanced crop production.
Claims
1. A sugar- and phosphorus-containing fertilizer, comprising a water-soluble carbon-containing compound and a phosphorus-containing compound; wherein a carbon element in the water-soluble carbon-containing compound and a phosphorus element in the phosphorus-containing compound are at a mass ratio of (1-15):1.
2. The fertilizer according to claim 1, wherein the carbon element in the water-soluble carbon-containing compound and the phosphorus element in the phosphorus-containing compound are at a mass ratio of (1-4):1 or (4-15):1.
3. The fertilizer according to claim 1, wherein the water-soluble carbon-containing compound is at least one selected from a group consisting of glucose, sucrose, sugarcane molasses, and beet molasses; and the sugarcane molasses and the beet molasses each have a saccharinity of 40% to 100%, specifically 85%.
4. The fertilizer according to claim 1, wherein the phosphorus-containing compound is at least one selected from the group consisting of phosphoric acid and a phosphate; the phosphate is at least one selected from the group consisting of monoammonium phosphate, diammonium phosphate, potassium dihydrogen phosphate, urea phosphate, and ammonium polyphosphate; and the ammonium polyphosphate has a polymerization degree of 2 to 10.
5. The fertilizer according to claim 1, wherein the sugar- and phosphorus-containing fertilizer is prepared from the water-soluble carbon-containing compound, the phosphorus-containing compound, and water; and the water and the water-soluble carbon-containing compound are at a mass ratio of (1-3):10.
6. A method for preparing the sugar- and phosphorus-containing fertilizer according to claim 1, comprising: mixing the water-soluble carbon-containing compound, the phosphorus-containing compound, and the water uniformly according to a proportion to obtain the sugar- and phosphorus-containing fertilizer.
7. A method for fertilization using the sugar- and phosphorus-containing fertilizer according to claim 1.
8. The method according to claim 7, wherein during the fertilization, the sugar- and phosphorus-containing fertilizer is applied at 90 kg to 525 kg per hectare of farmland.
9. The method according to claim 7, wherein the fertilization is conducted on maize, cotton, or alfalfa; the fertilization is conducted 1 to 3 times; and the fertilization is conducted by drip irrigation, furrow dressing, or hole application.
10. The method according to claim 7, comprising using the sugar- and phosphorus-containing fertilizer to achieve any one of the following effects, wherein the effects comprise: a, improving an activity of indigenous phosphorus-solubilizing functional microorganisms in the soil; b, increasing availability of phosphorus in the soil; c, promoting crop growth; and d, improving a utilization efficiency of a phosphate fertilizer.
11. The fertilizer according to claim 2, wherein the water-soluble carbon-containing compound is at least one selected from a group consisting of glucose, sucrose, sugarcane molasses, and beet molasses; and the sugarcane molasses and the beet molasses each have a saccharinity of 40% to 100%, specifically 85%.
12. The fertilizer according to claim 4, wherein the carbon element in the water-soluble carbon-containing compound and the phosphorus element in the phosphorus-containing compound are at a mass ratio of (1-4):1 or (4-15):1.
13. The fertilizer according to claim 4, wherein the water-soluble carbon-containing compound is at least one selected from a group consisting of glucose, sucrose, sugarcane molasses, and beet molasses; and the sugarcane molasses and the beet molasses each have a saccharinity of 40% to 100%, specifically 85%.
14. The fertilizer according to claim 5, wherein the carbon element in the water-soluble carbon-containing compound and the phosphorus element in the phosphorus-containing compound are at a mass ratio of (1-4):1 or (4-15):1.
15. The fertilizer according to claim 5, wherein the water-soluble carbon-containing compound is at least one selected from a group consisting of glucose, sucrose, sugarcane molasses, and beet molasses; and the sugarcane molasses and the beet molasses each have a saccharinity of 40% to 100%, specifically 85%.
16. The fertilizer according to claim 5, wherein the phosphorus-containing compound is at least one selected from the group consisting of phosphoric acid and a phosphate; the phosphate is at least one selected from the group consisting of monoammonium phosphate, diammonium phosphate, potassium dihydrogen phosphate, urea phosphate, and ammonium polyphosphate; and the ammonium polyphosphate has a polymerization degree of 2 to 10.
17. The method according to claim 6, wherein the carbon element in the water-soluble carbon-containing compound and the phosphorus element in the phosphorus-containing compo are at a mass ratio of (1-4):1 or (4-15):1.
18. The method according to claim 6, wherein the water-soluble carbon-containing compound is at least one selected from a group consisting of glucose, sucrose, sugarcane molasses, and beet molasses; and the sugarcane molasses and the beet molasses each have a saccharinity of 40% to 100%, specifically 85%.
19. The method according to claim 6, wherein the phosphorus-containing compound is at least one selected from the group consisting of phosphoric acid and a phosphate; the phosphate is at least one selected from the group consisting of monoammonium phosphate, diammonium phosphate, potassium dihydrogen phosphate, urea phosphate, and ammonium polyphosphate; and the ammonium polyphosphate has a polymerization degree of 2 to 10.
20. The method according to claim 6, wherein the sugar- and phosphorus-containing fertilizer is prepared from the water-soluble carbon-containing compound, the phosphorus-containing compound, and water; and the water and the water-soluble carbon-containing compound are at a mass ratio of (1-3):10.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE EMBODIMENTS
[0055] The present disclosure is further clearly and completely described below in conjunction with specific examples. Apparently, the protection scope of the present disclosure is not limited to the scope expressed in the examples. Anyone may draw other various forms of products under the enlightenment of the present disclosure. However, no matter any changes are made in the types or composition ratios of carbon-containing compounds and chemical phosphate fertilizer raw materials, all technical solutions the same as those of the present application all fall within the scope of protection of the present disclosure. The method is conventional, unless otherwise specified. All raw materials are commercially available, unless otherwise specified.
Example 1 Novel Sugar- and Phosphorus-Containing Fertilizer for Drip Irrigation of Spring Maize
[0056] 1. In this example, the novel sugar- and phosphorus-containing fertilizer included the following components with corresponding carbon-to-phosphorus ratios:
[0057] The novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) included: at a carbon-to-phosphorus ratio of 2.45:1, 120 parts of glucose (containing 40% carbon, which was equivalent to 48 parts of carbon). and 75 parts of monoammonium phosphate (containing 60% P.sub.2O.sub.5, which was equivalent to 19.6 parts of phosphorus).
[0058] The novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type) included: at a carbon-to-phosphorus ratio of 5.71:1, 280 parts of glucose (containing 40% carbon, which was equivalent to 112 parts of carbon), and 75 parts of monoammonium phosphate (containing 60% P.sub.2O.sub.5, which was equivalent to 19.6 parts of phosphorus). [0059] 2. The preparation and application methods included:
[0060] The drip irrigation was conducted. During the drip irrigation, the glucose and the monoammonium phosphate of the above parts were fully mixed in proportion, to obtain novel sugar- and phosphorus-containing fertilizer powders with high and low carbon-to-phosphorus ratios. The novel sugar- and phosphorus-containing fertilizer powders were added into a fertilization tank, stirred and mixed evenly, and then subjected to the drip irrigation along with water. [0061] 3. A planting mode of the spring maize by drip irrigation under mulch with a target yield of 12 t ha.sup.−1 was taken as an example.
[0062] The application method of the novel sugar- and phosphorus-containing fertilizer included a type of the novel fertilizer, a total amount of the fertilizer during the whole growth period, and amounts during different growth periods. [0063] (1) The “novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type)” was applied. The novel sugar- and phosphorus-containing-fertilizer per hectare of farmland was applied to the soil in three times, at 195.0 kg ha.sup.−1 (which was equivalent to the total amount of carbon and phosphorus of 67.7 kg ha.sup.−1, and the phosphorus-containing components of 19.6 kg P ha.sup.−1).
[0064] The first fertilization was conducted when watering for seedling emergence of maize, at an application amount accounting for 40% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 78.0 kg ha.sup.−1, which was equivalent to 27.1 kg ha.sup.−1 in the total amount of carbon and phosphorus); [0065] the second fertilization was conducted when first drip irrigation was completed after the emergence of maize; at an application amount accounting for 40% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 78.0 kg ha.sup.−1, which was equivalent to 27.1 kg ha.sup.−1 in the total amount of carbon and phosphorus); and [0066] the third fertilization was conducted when third drip irrigation was completed after the emergence of maize, at an application amount accounting for 20% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 39.0 kg ha.sup.−1, which was equivalent to 13.5 kg ha.sup.−1 in the total amount of carbon and phosphorus). [0067] (2) The “novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type)” was applied. The novel sugar- and phosphorus-containing fertilizer per hectare of farmland was applied to the soil in three times, at 355.0 kg ha.sup.−1 (which was equivalent to the total amount of carbon and phosphorus of 131.6 kg ha.sup.−1, and the phosphorus-containing components of 19.6 kg P ha.sup.−1).
[0068] The first fertilization was conducted when watering for seedling emergence of maize, at an application amount accounting for 40% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 142.0 kg ha.sup.−1, which was equivalent to 52.6 kg ha.sup.−1 in the total amount of carbon and phosphorus); [0069] the second fertilization was conducted when first drip irrigation was completed after the emergence of maize, at an application amount accounting for 40% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 142.0 kg ha.sup.−1, which was equivalent to 52.6 kg ha.sup.−1 in the total amount of carbon and phosphorus); and [0070] the third fertilization was conducted when third drip irrigation was completed after the emergence of maize; at an application amount accounting for 20% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 71.0 kg ha.sup.−1, which was equivalent to 26.3 kg ha.sup.−1 in the total amount of carbon and phosphorus). [0071] 4. The rest of the fertilization and field management were consistent with those of the actual production.
Application Effect
[0072] According to the above method, a field experiment was conducted in Shihezi, Xinjiang in 2018, and a total of 5 treatments were set up. [0073] Treatment one: as a control, herein no phosphate fertilizer was applied, and other fertilizers were supplied in sufficient quantities according to production routines; [0074] treatment two: as a low-phosphorus group, herein phosphorus application was conducted at 19.6 kg P ha.sup.−1 (45 kg P.sub.2O.sub.5 ha.sup.−1); [0075] treatment three: as a novel low-carbon fertilizer group, herein the novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) was applied at 195.0 kg ha.sup.−1; [0076] treatment four: as a novel high-carbon fertilizer group, herein the novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type) was applied at 355.0 kg ha.sup.−1; and [0077] treatment five: as a high-phosphorus group, herein phosphorus was applied at 52.4 kg P ha.sup.−1 (120 kg P.sub.2O.sub.5 ha.sup.−1).
[0078] Experimental results were shown in
Example 2 Novel Sugar- and Phosphorus-Containing Fertilizer for Furrow Dressing of Spring Maize
[0079] 1. In this example, the novel sugar- and phosphorus-containing fertilizer included the following components with corresponding carbon-to-phosphorus ratios:
[0080] The novel sugar- and phosphorus-containing fertilizer 1 (glucose) included: at a carbon-to-phosphorus ratio of 3.66:1, 300 parts of glucose containing 40% carbon, which was equivalent to 120 parts of carbon), and 125 parts of monoammonium phosphate (containing 60% P.sub.2O.sub.5, which was equivalent to 32.7 parts of phosphorus).
[0081] The novel sugar- and phosphorus-containing fertilizer 2 (sugarcane molasses) included: at a carbon-to-phosphorus ratio of 3.66:1, 353 parts of glucose (purchased from Jinan Xinkang New Material Co., Ltd., as a molasses powder with a saccharinity of 85%; containing 34% carbon, which was equivalent to 120 parts of carbon), and 125 parts of monoammonium phosphate (containing 60% P.sub.2O.sub.5, which was equivalent to 32.7 parts of phosphorus) [0082] 2. The preparation and application methods included:
[0083] The glucose and the sugarcane molasses powder of the above specific portion were mixed uniformly with the monoammonium phosphate separately to obtain a novel sugar- and phosphorus-containing fertilizer powder. A 7 cm to 15 cm deep furrow was dug near the root system of the crops, the novel sugar- and phosphorus-containing fertilizer powder was spread evenly in the furrow, and the soil was covered and irrigated in time. [0084] 3. The spring maize with a target yield of 10.5 t ha.sup.−1 was taken as an example.
[0085] The application method of the novel sugar- and phosphorus-containing fertilizer included a type of the novel fertilizer, a total amount of the fertilizer during the whole growth period, and amounts during different growth periods. [0086] (1) The “novel sugar- and phosphorus-containing fertilizer 1 (glucose)” was applied. The novel sugar- and phosphorus-containing fertilizer per hectare of farmland was applied to the soil in two times, at 425.0 kg ha.sup.−1 (which was equivalent to the total amount of carbon and phosphorus of 152.7 kg ha.sup.−1, and the phosphorus-containing components of 32.7 kg P ha.sup.−1).
[0087] When sowing maize, the fertilization was applied along with a seed fertilizer, at an application amount accounting for 40% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 170.0 kg ha.sup.−1, which was equivalent to 61.1 kg ha.sup.−1 in the total amount of carbon and phosphorus);
[0088] When topdressing the maize at a jointing stage, the fertilization was applied at an application amount accounting for 60% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 255.0 kg ha.sup.−1, which was equivalent to 91.6 kg ha.sup.−1 in the total amount of carbon and phosphorus). [0089] (2) The “novel sugar- and phosphorus-containing fertilizer 2 (sugarcane molasses)” was applied. The novel sugar- and phosphorus-containing fertilizer per hectare of farmland was applied to the soil in two times, at 478.1 kg ha.sup.−1 (which was equivalent to the total amount of carbon and phosphorus of 152.7 kg ha.sup.−1, and the phosphorus-containing components of 32.7 kg P ha.sup.−1),
[0090] When sowing maize, the fertilization was applied along with a seed fertilizer, at an application amount accounting for 40% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 191.3 kg ha.sup.−1, which was equivalent to 61.1 kg ha.sup.−1 in the total amount of carbon and phosphorus);
[0091] When topdressing the maize at a jointing stage, the fertilization was applied at an application amount accounting for 60% of a total amount of the fertilizer (the amount of the novel sugar- and phosphorus-containing fertilizer was 286.8 kg ha.sup.−1, which was equivalent to 91.6 kg ha.sup.−1 in the total amount of carbon and phosphorus). [0092] 4. The rest of the fertilization and field management were consistent with those of the actual production.
Application Effect
[0093] According to the above method, a field experiment was conducted at the Shangzhuang Experimental Station of China Agricultural University, and a total of 4 treatments were set up. Treatment one: as a control, herein no phosphate fertilizer was applied, and other fertilizers were supplied in sufficient quantities according to production routines; treatment two: as a phosphate fertilizer group, herein phosphorus application was conducted at 52.4 kg P ha.sup.−1 (120 kg P.sub.2O.sub.5 ha.sup.−1); treatment three: as a novel fertilizer 1 group, herein the “novel sugar- and phosphorus-containing fertilizer 1 (glucose)” was applied at 425.0 kg ha.sup.−1; and treatment four: as a novel fertilizer 2 group, herein the “novel sugar- and phosphorus-containing fertilizer 2 (sugarcane molasses)” was applied at 478.1 kg ha.sup.−1.
[0094] Experimental results were shown in
Example 3 Novel Sugar- and Phosphorus-Containing Fertilizer for Drip Irrigation of Cotton
[0095] 1. In this example, the novel sugar- and phosphorus-containing fertilizer included the following components with corresponding carbon-to-phosphorus ratios:
[0096] The novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) included: at a carbon-to-phosphorus ratio of 1.44:1, 85 parts of glucose (containing 40% carbon, which was equivalent to 34 parts of carbon), and 90 parts of monoammonium phosphate (containing 60% P.sub.2O.sub.5, which was equivalent to 23.6 parts of phosphorus).
[0097] The novel sugar- and phosphorus-containing fertilizer (high-carbon type) included: at a carbon-to-phosphorus ratio of 4.58:1, 180 parts of glucose (containing 40% carbon, which was equivalent to 72 parts of carbon), and 60 parts of monoammonium phosphate (containing 60% P.sub.2O.sub.5, which was equivalent to 15.7 parts of phosphorus). [0098] 2. The preparation and application methods included:
[0099] The drip irrigation was conducted. During the drip irrigation, the glucose and the monoammonium phosphate of the above parts were fully mixed in proportion, to obtain novel sugar- and phosphorus-containing fertilizer powders with low carbon and high carbon. The novel sugar- and phosphorus-containing fertilizer powders were added into a fertilization tank along with other fertilizers, stirred and mixed evenly, and then subjected to the drip irrigation along with water. The novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) was applied when watering for seedling emergence, and the novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type) was applied when first drip irrigation was completed after the emergence of maize. [0100] 3. A planting mode of the cotton by drip irrigation under mulch with a target lint yield of 2.25 t ha.sup.−1 was taken as an example.
[0101] The application method of the novel sugar- and phosphorus-containing fertilizer included a type of the novel fertilizer, a total amount of the fertilizer during the whole growth period, and amounts during different growth periods.
[0102] Throughout the growth period of cotton, a total of 415.1 kg ha.sup.−1 of the novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) and the novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type) were applied (which was equivalent to the total amount of carbon and phosphorus of 145.3 kg ha.sup.−1, and the phosphorus-containing components of 39.3 kg P ha.sup.−1).
[0103] The novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) was applied to the soil in one time when watering for seedling emergence, at 175.1 kg ha.sup.−1 (which was equivalent to the total amount of carbon and phosphorus of 57.6 kg ha.sup.−1, and the phosphorus-containing components of 23.6 kg P ha.sup.−1).
[0104] The novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type) was applied to the soil in one time when first drip irrigation was completed after the emergence of maize, at 240.0 kg ha.sup.−1 (which was equivalent to the total amount of carbon and phosphorus of 87.7 kg ha.sup.−1, and the phosphorus-containing components of 15.7 kg P ha.sup.−1) [0105] 4. The rest of the fertilization and field management were consistent with those of the actual production.
Application Effect
[0106] According to the above method, a field experiment was conducted Shihezi, Xinjiang, and a total of 3 treatments were set up. Treatment one: as a control, herein no phosphate fertilizer was applied, and other fertilizers were supplied in sufficient quantities according to production routines; treatment two: as a phosphate fertilizer group, phosphorus application was conducted at 52.4 kg P ha.sup.−1 (120 kg P.sub.2O.sub.5 ha.sup.−1); and treatment three: as a novel fertilizer group, herein the novel sugar- and phosphorus-containing fertilizer 1 (low-carbon type) was applied at 175.1 kg ha.sup.−1 when watering for seedling emergence, and the novel sugar- and phosphorus-containing fertilizer 2 (high-carbon type) was applied at 240.0 kg ha.sup.'11 when first drip irrigation was completed after the emergence of maize.
[0107] Experimental results were shown in
Example 4 Novel Sugar- and Phosphorus-Containing Fertilizer for Application of Potted Cotton
[0108] 1. In this example, the novel sugar- and phosphorus-containing fertilizer included the following components with corresponding carbon-to-phosphorus ratios:
[0109] The novel sugar- and phosphorus-containing fertilizer 1 included: at a carbon-to-phosphorus ratio of 6.58:1, 375 parts of glucose (containing 40% carbon, which was equivalent to 150 parts of carbon), and 100 parts of potassium dihydrogen phosphate (containing 22.79% phosphorus, which was equivalent to 22.79 parts of phosphorus).
[0110] The novel sugar- and phosphorus-containing fertilizer 2 included: at a carbon-to-phosphorus ratio of 13.16:1, 750 parts of glucose (containing 40% carbon, which was equivalent to 300 parts of carbon), and 100 parts of potassium dihydrogen phosphate (containing 22.79% phosphorus, which was equivalent to 22.79 parts of phosphorus).
[0111] The novel sugar- and phosphorus-containing fertilizer 3 included: at a carbon-to-phosphorus ratio of 21.94:1, 1250 parts of glucose (containing 40% carbon, which was equivalent to 500 parts of carbon), and 100 parts of potassium dihydrogen phosphate (containing 22.79% phosphorus, which was equivalent to 22.79 parts of phosphorus). [0112] 2. The preparation and application methods included:
[0113] The above amount of glucose and potassium dihydrogen phosphate were mixed with the soil in proportion, and then sowing was conducted. [0114] 3. The potted cotton was taken as an example.
[0115] 4.75 g kg.sup.−1 of the novel sugar- and phosphorus-containing fertilizer 1. 8.50 g kg.sup.−1 of the novel sugar- and phosphorus-containing fertilizer 2, and 13.50 g kg.sup.−1 of the novel sugar- and phosphorus-containing fertilizer 3 were mixed with the soil, followed by conducting sowing. Two seedlings were planted per pot, and then harvested after 80 d of cotton growth.
Application Effect
[0116] According to the above method, a pot experiment was conducted in a greenhouse of China Agricultural -University, and a total of 5 treatments were set up. Treatment one: as a control, herein no phosphate fertilizer was applied; treatment two: as a phosphate fertilizer group, herein 0.228 g P kg.sup.−1 of phosphorus was applied; treatment three: as a novel sugar- and phosphorus-containing fertilizer 1 group, herein 4.75 g kg.sup.−1 of the novel sugar- and phosphorus-containing fertilizer was applied; treatment four: as a novel sugar- and phosphorus-containing fertilizer 2 group, herein 8.50 kg.sup.−1 of the novel sugar- and phosphorus-containing fertilizer was applied; and treatment five: as a novel sugar- and phosphorus-containing fertilizer 3 group, herein 13.50 g kg.sup.−1 of the novel sugar- and phosphorus-containing fertilizer was applied.
[0117] Experimental results were shown in
INDUSTRIAL APPLICATION
[0118] In the present disclosure, through a large number of studies, it has been found that the carbon-containing compound may be mixed with the phosphorus-containing chemical fertilizer according to a mass ratio of carbon and phosphorus (i.e., the carbon-to-phosphorus ratio) of (1-15):1, and then applied to the soil. This can significantly increase the activity of indigenous phosphorus-solubilizing functional microorganisms in the soil, increase the availability of phosphorus in the soil, and then promote crop growth and improve the utilization efficiency of phosphate fertilizer. For example, through simulation experiments, it was found that when a mixture of chemical phosphate fertilizer and carbon-containing compound was applied at a carbon-to-phosphorus ratio of (1-13.3):1, soil microbial activity and phosphatase activity were significantly increased, and crop growth and phosphorus uptake efficiency were significantly improved. In field experiments, it was found that the chemical phosphate fertilizer containing 32.67 kg of phosphorus and the carbon-containing compound containing 48 kg to 180 kg of carbon could be mixed per hectare of farmland (with a corresponding carbon-to-phosphorus ratio ranged from (1.5-5.5):1). At this time, soil respiration was strengthened, soil phosphatase activity and water-soluble phosphorus content were enhanced, and crop yield was significantly increased. The studies also found that when the carbon-phosphorus input ratio reached 21.9:1, the growth of cotton was significantly inhibited.
[0119] In summary, the novel fertilizer provided by the present disclosure contains a carbon source that stimulates the growth and activity of microorganisms, After application, the novel fertilizer may regulate the phosphorus-solubilizing activity of soil microorganisms, improve the phosphorus utilization efficiency, and increase the crop yield.