Submitted:
29 September 2024
Posted:
30 September 2024
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Abstract
Keywords:
1. Introduction
1.1. Current Industrial Fertilizer Production Process
1.2. Greener Nitrogen Fertilizer Production Processes
2. Plasma N Fixation and Its Potential as a Fertilizer
2.1. Non-Thermal Plasma N Fertilizer Production
2.2. The Flow Rate of NO from the Plasma Reactor
2.3. Value Addition to Plasma N
2.3.1. Electrosynthesis of Ammonia from Plasma Nitrate
2.3.2. Impact of Catalysts on Electro-Reduction of Nitrates to Ammonia
2.3.3. Effect of Nitrate Concentration on Ammonia Synthesis
| Cathode Material | Conditions | Maximum FE to NH3 (%) | Partial Current Density to NH3 (mA cm−2) | Maximum NH3 Production | Reference |
| Fe | 1.0M KOH at 3mL min−1 flow rate, 0.5M KNO3/0.1M K2SO4 at 1mL min−1, -0.66 V versus RHE | 75 | -100 | 0.46 mmol h−1 cm−2 | [48] |
| Strained Ru nanoclusters | 1 M NO3-, 1 M KOH, ‘-0.2 V versus RHE | 75 | -120 | 1.17 mmol h-1 cm-2 | [49] |
| Ti | 0.3 M KNO3, 0.1 M HNO3, acidic pH, ‘-1 V versus RHE | 82 | -22 | - | [51] |
| TiO2 | 3.6 mM NO3-, 0.5 M NaSO4, ‘-1.6 V versus SCE | 66.3 | - | 0.005 mmol h-1 cm-2 | [52] |
| TiO2-X | 3.6 mM NO3-, 0.5 M NaSO4, ‘-1.6 V versus SCE | 85 | - | 0.009 mmol h-1 cm-2 | [52] |
| Cu-incorporated PTCDA | 36 mM NO3-, 0.1 mM PBS, pH 7, ‘-0.4 V versus RHE | 85.9 | - | 0.0256 mmol h-1 cm-2 | [53] |
| Cu/Cu2O NWAs | 14.3 mM NO3-, 0.5 M NaSO4, ‘-0.85 V versus RHE | 95.8 | - | 0.2449 mmol h-1 cm-2 | [54] |
| Ru-dispersed Cu nanowire | 32.3 mM NO3- (2,000 ppm), 1 M KOH, –0.13 V versus RHE | 96 | -965 | 1.76 mmol h–1 cm–2 | [13] |
| Cu-Ni alloys | 100 mM NO3-, 1M KOH, pH 14, ‘-0.1 V versus RHE | 99 | -90 | - | [50] |
2.3.4. Crystallization of Liquid Ammonia to Ammonium Salt Fertilizers
2.4. Performance of Plasma N on Crop Production
2.5. Potential Use of Plasma N as Fertilizer
2.6. Limitation of Plasma N Fertilizer
3. Mechanism of Nitrogen (Plasma N) Retention and Loss from Soil
3.1. Mitigation Strategies
4. Nanoparticle-Based Delivery System and Nanotechnology in Fertilizer Application

4.1. Nanoparticle Mobility Mechanism for Slow Release of Nitrogen in the Soil
4.1.1. Nanofertilizer- Soil Matrix Transport Mechanism
4.1.2. Mechanisms of Soil Moisture- Nano Coating on Nitrogen Release

4.1.3. Nanofertilizer Charge Influence Towards the Slow-Release Mechanism of Nitrogen
5. Materials for Transforming Plasma N Products into Slow-Release Forms
5.1. Production of Cellulose Nanoparticles
5.1.1. Major Plant Sources of Nanocellulose
5.1.2. Extraction of Nano Cellulose
5.1.3. Nano Cellulose Isolation Methods
| Cellulosic source | Isolation method | Nanocellulose type | Morphology | Diameter (nm) | Crystallinity (%) | Zeta potential (mV) | Average tensile strength (MPa) | Average Young’s modulus (GPa) | Maximum degradation temperature (◦C) | References |
| Banana pseudostem | High-pressure homogenization | CNF | An entangled network of polydisperse bundles | 30–50 | 67 | – | – | – | 337 | [88] |
| Banana peel | KOH | CNF | nano spherical | 19–55 | - | – | – | – | - | [30] |
| Maize cob residue | TEMPO-mediated oxidation | CNF | Twisted shape | 2.1 ± 1.1 | 49.9 | −23.1 ± 2.3 | – | – | 305 | [89] |
| PFI refining | CNF | Twisted | 43.1 ± 25.3 | 52.1 | −40.3 ± 1.5 | – | – | 336 | ||
| H2SO4 hydrolysis | CNC | Short rod-shaped | 5.5 ± 1.9 | 55.9 | −33.8 ± 1.7 | – | – | 313 | ||
| Formic acid hydrolysis | CNC | Long rod-shaped | 6.5 ± 2.0 | 63.8 | −14.3 ± 0.4 | – | – | 360 | ||
| Maize husk | TEMPO-mediated oxidation | CNF | Slender interconnected Webbs | 10.48 ± 1.83 | 72.3 | −69.4 ± 1.7 | – | – | 279 | [90] |
| High-intensity ultrasonication |
CNF | Slender interconnected Webbs | 20.14 ± 4.32 | 53.4 | −24.3 ± 2.5 | – | – | 348 | ||
| H2SO4 hydrolysis | CNC | Short and rod-shaped | 26.9 ± 3.35 | 83.5 | −34.6 ± 2.3 | – | – | 351 | ||
| Wheat straw stalks | H2SO4 hydrolysis and ultrasound treatment | CNF | Mesh-like shape | 10–40 | 72.5 | – | 42.3 | 11.45 | ca. 400 | [91] |
| Cotton | H3PO4 hydrolysis | CNC | Rod-shaped | 31 ± 14 | 81 | – | – | – | 325 | [92] |
| Water hyacinth | Mechanical fibrillation | CNF | Web-like network structure | 19.2 ± 4.3 | 55 | – | 50 | – | 331 | [84] |
| Bacterial strain Komagataeibacter xylinus | Agitated culture: 300 rpm at 30 ◦C | BNC | Loose and porous network | 29.51 ± 8.03 | 22.1 | −46.5 ± 1.5 | – | – | 310 | [93] |
| Static culture for 96 h at 30 ◦C | BNC | Denser network structure | 29.13 ± 6.53 | 47.4 | −44.1 ± 0.9 | 0.235 | 0.72 | 335 |
6. Transformation of Plasma N into Nano form Using Nano Cellulose
6.1. Direct Absorption of Nitrate from Plasma N into Nanoform
6.1.1. Ion Exchange Process of Plasma N Absorption
6.1.2. Reverse Osmosis Process
| Slow-release fertilizer preparation methods | Fertilizer | N source | Nutrients | Nano particles used | Nano particle preparation method | Binder | N release | Reference |
| Impregnation | Nano-biochar SRF | Sodium nitrate | N, P, K, Ca, and micronutrients | Nano-biochar | Physical crushing | - | >10 days | [97] |
| Matrix | U-CAM | Urea | N, Fe, Ca | Carboxylated nanocellulose (CNF) | Catalytic oxidation | Hydrogel | >30 days | [98] |
| Matrix | WNLCU | Urea | N | Attapulgite (HA) | High-energy electron beam (HEEB) irradiation | Sodium polyacrylate (P) and polyacrylamide (M) | 66% lower than control | [99] |
| Matrix | WNLCN | Ammonium chloride | N | Attapulgite (HA) | High-energy electron beam (HEEB) irradiation | Sodium polyacrylate (P) and polyacrylamide (M) | 90% lower than control | [99] |
| Ion Exchange (IE) | N/A | KNO3 solution | N | Nanocrystalline cellulose | Acid hydrolysis, H2O4 | - | - | [100] |
| Reverse Osmosis (RO) | N/A | NaNO3 | N | Sepiolite | Hydrothermally synthesized | - | - | [70] |
| Biological accumulation | Waste sludge | Wastewater | N, P | Carbon source | - | - | 10 days | [6] |
| In-situ graft polymerization | BPC-g-PAA/PVA/LDH/NP | Urea and Ammonium dihydrogen phosphate | N, P | Banana cellulose | Co-precipitation method | Polyvinyl Alcohol (PVA) | 60% in water after 30 min | [32] |
| Coating | PVA@CNC coated NPK | NPK | N, K, and P | Raw hemp | Co-precipitation method | PVA | 90% in 22 days | [39] |
| Encapsulation | St-PVOH encapsulated urea | Urea | N | Starch | Co-precipitation method | PVA | <18% in 6 days and 62% after 32 days | [101] |
| Nano emulsion | DMAB-CNC-stabilized emulsions | Didecyldimethyl ammonium bromide (DMAB) | N, K, and P | Cotton cellulose nanocrystals | Co-precipitation method | - | - | [102] |
| Matrix | Loss control urea (LCU) | Urea | N | Attapulgite (HA) | Irradiated by high-energy electron beam and O3 treatment | Polyacrylamide (P) | 50% lower than urea | [103] |
| Matrix | HA-POL-urea | Urea | N, K, and P | Hydroxyapatite (HAD) | Sol—gel | Cellulose fibre and polyacrylamide | 112 days | [104] |
| Surface carrier | Zeolite | Sodium nitrate | N and other macro- and micronutrients | Zeolite | Co-precipitation method | - | days—water and >16 days—soil | [105] |
| Coating | Coated urea | Urea | N | Kaoline and Polystyrene-starch | Ultra-highspeed cutting and semi-emulsification | - | - | [106] |
| Matrix and coating | QAL-Ben-U | Urea | N | Bentonite | Soil–gel | Quaternary ammonium lignin (QAL) | - | [107] |
| Matrix | Kao-urea | Urea | N | Kaolin | Milling | - | >7 days | [108] |
| Matrix | Gal-ADP | Ammonium dihydrogen phosphate (ADP) | N, K, P, and other micronutrients | Glauconite | Chemical and mechanochemical method | Na2CO3 as an extender | >56 days | [109] |
| Surface carrier | Zeo-AN | Ammonium nitrate (AN) | N | Zeolite (surface-modified) | Hydrothermally synthesized | - | 35% lower than CF | [110] |
6.1.3. Biological Process
6.2. Indirect Absorption of Nitrate from Plasma N
6.2.1. Graft Polymerization
6.2.2. Coating Method
6.2.3. Nano-Enabled Emulsions
7. Conclusion
Funding
Conflicts of Interest
References
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| Fertilizer type | Preparation method | Crop | Crop response | Nutrient use efficiency type | NUE | Reference | |
| Nano-DAP | Emulsion | Rice | − 128% grain yield increase over the control. − Total N uptake of 114.3 kgha-1 compared to 44.2 kg of the control. − Increased P and K uptake by 181% and 159%, respectively. |
Agronomic Use Efficiency (AUE), kgha-1 | 31 | [114] | |
| Apparent Nutrient Use Efficiency (ANUE), % | 70 | ||||||
| Physiological Efficiency (PE), kgha-1 | 44.2 | ||||||
| Nano-NPK | Emulsion | Potato | − 22-57% increase in water use efficiency (WUE) over the control and NPK. − Increased use efficiency of P and K. |
Agronomic Use Efficiency (AUE), kgha-1 | 233-667 | [115] | |
| Physiological Efficiency (PE), kgha-1 | 85-98 | ||||||
| Nano Urea | Emulsion | Maize | − Increased yield attributing characters viz., plant height, days to silking, number of cobs per plant, number of seeds per cob, cobs per plot; ear length (cob); ear girth; test weight and root biomass. − A 23% yield increase over the control. − Reduced level of application and cost of production. |
- | - | [116] | |
| Controlled release Urea (CRU) | Encapsulation | Tomato | − CRU applied 100, 50, and 25% of the recommended dose of conventional urea significantly enhanced plant growth parameters, including plant height, number of leaves, fresh weight, and dry weight, and nutritional values, compared to the control. | Physiological Efficiency (PE), kgha-1 | 47-88 | [107] | |
| Gal-ADP | Matrix | Oat | − A 5% more germination rate than control plot without fertilizer. − Plant height increase of 4.6-9.9% over the control. − Yield increased by more than 4.6% than the control. |
- | - | [109] | |
| U-CAM | Matrix | Wheat | − A 52.5% and 32.5% more germination rate than control and urea only, respectively. − Plant growth characteristics more than or doubled compared to no U-CAM. |
- | - | [98] | |
| Urea-HA | Coating | Rice | − Halve fertilizer use. − Enhanced yields. − Release 12 times more slowly compared to pure urea. |
- | - | [117] | |
| SRF/SRFR | Resin-coated | Winter Chines chives | − Increased yield by 37% compared to conventional fertilizers. − A 31% reduction in SRF significantly decrease nutrient surplus in the soil, maintain the soil’s nutrient balance, and improve the soil’s fertility. − Increased uptake of N, P, and K in leaves and the fertilizer N and P use efficiencies. − Had a 47% increase in profitability. Significant reduction in the surplus of N (42%) and P (58%). |
AUE | 28.2-54.9 | [118] | |
| PE | 11-18% more than conventional fertilizers | ||||||
| Partial factor productivity (PFP) | 57.4-118 | ||||||
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