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Research Articles

Vol. 13 No. sp3 (2026): Climate-Weed Nexus: Innovations for Sustainable Farming (CWIS 2025)

Precision farming for optimised nutrient use efficiency and yield of Capsicum annuum L. in southern coastal plain of Kerala

DOI
https://doi.org/10.14719/pst.13439
Submitted
30 December 2025
Published
16-04-2026

Abstract

Modern agriculture has driven significant yield increase but also led to widespread chemical fertiliser use, causing soil health deterioration and multiple nutrient deficiencies. In India, studies evaluating optimal nutrient management strategies for high-value crops like chilli in nutrient-deficient sandy coastal soils using precision farming techniques are limited. To address this knowledge gap, a field experiment was conducted in nutrient-deficient sandy coastal soils of Kerala during 2023–2024 using a split plot design to evaluate balanced nutrition strategies combining fertigation and foliar application of nutrients in Capsicum annuum L. For that, 75, 100 and 125 % of 210:46:276 nitrogen, phosphorus and potassium (NPK) kg ha-1, were applied through fertigation and were indicated as F1, F2 and F3 respectively. It was compared against fertigation dosage of 75:40:25 NPK kg ha-1 (F4). Secondary and micronutrient effects were studied using soil application of sulphur (25 kg ha-1) S1, foliar nutrition of 0.5 % Sampoorna (S2), foliar nutrition of 0.25 % (S3) and 0.5 % (S4) of customised multinutrient mixtures with water spray (S5) as control. Results demonstrated that the treatment F3S2 recorded maximum fruit weight (8.2 g) and total nutrient uptake of potassium (312.12 kg ha-1), sulphur (37.19 kg ha-1) and zinc (434.02 g ha-1), while F2S2 exhibited highest uptake of calcium (128.04 kg ha-1) and iron (15.74 kg ha-1). Maximum magnesium uptake (111.99 kg ha-1) was observed in F3S4 substantially outperforming F4S5. Hence, 263:60:345 NPK kg ha-1 with foliar nutrition of Sampoorna optimised balanced nutrition and productivity of chilli in sandy coastal soils.

References

  1. 1. Pradhan PC, Dalai A, Behera S. Productivity and profitability of onion (Allium cepa L.) grown under drip fertigation in tropical zone of Odisha. J. Indian Water Resour. Soc. 2021;41(1).
  2. 2. Bhattacharyya R, Ghosh BN, Mishra PK, Mandal B, Rao CS, Sarkar D, et al. Soil degradation in India: Challenges and potential solutions. Sustainability. 2015;7(4):3528–70. https://doi.org/10.3390/su7043528
  3. 3. Shukla AK, Behera SK, Prakash C, Tripathi A, Patra AK, Dwivedi BS, et al. Deficiency of phyto-available sulphur, zinc, boron, iron, copper and manganese in soils of India. Scientific Reports. 2021;11(1):19760. https://doi.org/10.1038/s41598-021-99040-2
  4. 4. Mythili G, Goedecke J. Economics of land degradation in India. In: Economics of land degradation and improvement-a global assessment for sustainable development. Springer, Cham. 2016;431–69. https://doi.org/10.1007/978-3-319-19168-3_15
  5. 5. Sureshkumar P, Geetha P, Kutty MN, Kutty CN, Pradeepkumar T. Fertigation-the key component of precision farming. Journal of Tropical Agriculture. 2016;54(2):103.
  6. 6. Sreepriya P, Balasubramanian R. Soil degradation in Kerala state and a case study on socio-economic impact due to flood in its Idukki district. Journal of Applied & Natural Science. 2020;12(2). https://doi.org/10.31018/jans.vi.2265
  7. 7. Ramesh E, Sindhu V, Triveni VM, Vandana KS. Effect of foliar application of secondary nutrients and micronutrients on vegetable crops. 2023.
  8. 8. Bouyoucos CJ. Hydrometer method improved for making particle size analysis of soil. Agron. J. 1962;54:464–5. https://doi.org/10.2134/agronj1962.00021962005400050028x
  9. 9. Piper CS. Soil and plant analysis. Hans Publication, Bombay. 1967;368.
  10. 10. Jackson ML. Soil chemical analysis. Prentice Hall of India, New Delhi. 1958;498.
  11. 11. Walkley A, Black IA. An examination of the Degtjareff method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Sci. 1934;37(1):29–38. https://doi.org/10.1097/00010694-193401000-00003
  12. 12. Subbiah BV, Asija GL. A rapid procedure for the estimation of available nitrogen in soils. Curr. Sci. 1956;25:259–60.
  13. 13. Olsen SR, Cole CV, Watanabe FS, Dean LA. Estimation of available phosphorus in soil by extraction with NaHCO3. USDA Cir. 939 (quoted from Methods of Soil Analysis C.A. Black (ed) 1965). Am. Soc. Agron. Inc., Madison, Wisconsin, USA. 1954;1035. https://doi.org/10.2134/agronmonogr9.2.c22
  14. 14. DOA (Department of Agriculture). Manual on soil, plant and water analysis. Venugopal VK, Nair KM, Vijayan MR, John KS, Sureshkumar P, Ramesh CR, eds. Government of Kerala. 2013;214.
  15. 15. Tabatabai MA. Sulphur. In: Page AL, Miller RH, Keeney DR, eds. Methods of Soil Analysis Part 2: Chemical and Microbiological Properties. American Society of Agronomy and Soil Science Society of America, Madison, Wisconsin, USA. 1982;501–34. https://doi.org/10.2134/agronmonogr9.2.2ed.c28
  16. 16. Massoumi A, Cornfield AH. A rapid method for determination of sulphate in water extracts of soil. Analyst. 1963;88:321–2. https://doi.org/10.1039/an9638800321
  17. 17. Lindsay WL, Norvell W. Development of a DTPA soil test for zinc, iron, manganese and copper. Soil Sci. Soc. Am. J. 1978;42(3):421–8. https://doi.org/10.2136/sssaj1978.03615995004200030009x
  18. 18. Gupta UC. A simplified method for determining hot water soluble boron in podzol soils. Soil Sci. 1967;103:424–8. https://doi.org/10.1097/00010694-196706000-00009
  19. 19. KAU [Kerala Agricultural University]. Package of practices for precision farming in vegetables (Ad hoc). Kerala Agricultural University, Thrissur. 2013;44.
  20. 20. KAU [Kerala Agricultural University]. Package of practices recommendations: Crops (15th Ed.). Kerala Agricultural University, Thrissur. 2016;393.
  21. 21. Panse VG, Sukhatme PV. Statistical methods for agriculture workers. ICAR, New Delhi. 1985;4th Edn.
  22. 22. Jackson ML. Soil chemical analysis (2nd Ed.). Prentice Hall of India, New Delhi. 1973;498.
  23. 23. Page AL. Methods of soil analysis. Part 2. Chemical and microbiological properties. 1982;1159. https://doi.org/10.2134/agronmonogr9.2.2ed
  24. 24. Hart MGR. A turbidimetric method for determining elemental sulphur. Analyst. 1961;86:472–5. https://doi.org/10.1039/an9618600472
  25. 25. Bingham FT. Boron. Methods of soil analysis: Part 2 chemical and microbiological properties. 1982;9:431–47. https://doi.org/10.2134/agronmonogr9.2.2ed.c25
  26. 26. Ashwini BN. Response of bhindi (Abelmoschus esculentus L. Moench) to fertigation and foliar nutrition in red loam soil of Kasaragod. PhD (Ag) thesis, Kerala Agricultural University, Padannakkad. 2016;207.
  27. 27. Gupta AJ, Ahmed N, Bhat FN, Cbattoo MA. Production of hybrid tomato for higher income under drip irrigation and fertigation in Kashmir valley. Indian J. Hort. 2010;67(1):127–31.
  28. 28. Badr MA, Abou Hussein SD, El-Tohamy WA, Gruda N. Nutrient uptake and yield of tomato under various methods of fertiliser application and levels of fertigation in arid lands. Gesunde Pflanzen. 2010;62(1):11–9. https://doi.org/10.1007/s10343-010-0219-5
  29. 29. Vijayakumar G, Tamilmani D, Selvaraj PK. Irrigation and fertigation scheduling under drip irrigation in brinjal (Solanum melongena L.) crop. Indian J. Bio-Resource Manag. 2010;1:72–6.
  30. 30. Santos DV, Sousa PL, Smith RE. Model simulation of water and nitrate movement in a level-basin under fertigation treatments. Agric. Water Manag. 1997;32:293–306. https://doi.org/10.1016/S0378-3774(96)01273-5
  31. 31. Li J, Zhang J, Ren L. Water and nitrogen distribution as affected by fertigation of ammonium nitrate from a point source. Irrig. Sci. 2003;22:19–30. https://doi.org/10.1007/s00271-003-0064-8
  32. 32. Vasane SR, Bhoi PG, Patil AS, Tumbare AD. Effect of liquid fertiliser through drip irrigation on yield and NPK uptake of tomato. J. Maharashtra Agric. Univ. 1996;21(3):488–9.
  33. 33. Badr MA, Shafei AM. Effect of acidified water on nutrients availability and plant growth in sandy soil under drip irrigation system. Egypt. J. Appl. Sci. 2002;17(11):718–34.
  34. 34. Hanson BR, Simunek J, Hopmans JW. Evaluation of urea–ammonium–nitrate fertigation with drip irrigation using numerical modelling. Agric. Water Manag. 2006;86:102–13. https://doi.org/10.1016/j.agwat.2006.06.013
  35. 35. Rivera RN, Duarte SN, De Miranda JH, Botrel TA. Potassium modeling dynamics in the soil under drip irrigation: Model validation. Eng. Agric., Jaboticabal. 2006;26(2):388–94.
  36. 36. Vanlauwe B, Descheemaeker K, Giller KE, Huising J, Merckx R, Nziguheba G, et al. Integrated soil fertility management in sub-Saharan Africa: unravelling local adaptation. Soil. 2015;1(1):491-508. https://doi.org/10.5194/soil-1-491-2015
  37. 37. Girish C, Suhas PW, Kanwar LS, Rajesh C. Enhanced nutrient and rainwater use efficiency in maize and soybean with secondary and micronutrient amendments in the rainfed semi-arid tropics. Arch. Agron. Soil Sci. 2015;61(3):285–98. https://doi.org/10.1080/03650340.2014.928928
  38. 38. Ashish, Ranjan, Vinit C. Response of okra to organic and inorganic fertilization. Appli. Biol. 2006;16(2):14–16.
  39. 39. Alva AK. Effects of various pre-plant and in-season nitrogen management practices for potatoes on plant and soil nitrogen status. Commun. Soil Sci. Plant Ann. 2009;40(16):649–59. https://doi.org/10.1080/00103620802646829
  40. 40. Ravi S, Channal T, Hebsur NS, Dharamtti. Effect of sulphur, zinc and iron nutrition on growth, yield, nutrient uptake and quality of safflower (Carthamus tinctorius L.). Karnataka J. Agric. Sci. 2008;21:3.
  41. 41. Mohapatra AKB, Dixit L. Integrated nutrient management in rainy season groundnut (Arachis hypogaea). Indian J. Agron. 2010;55(2):123–7. https://doi.org/10.59797/ija.v55i2.4740
  42. 42. Sharma S, Patra SK, Ray R. Effect of drip fertigation on growth and yield of guava cv. Khaja. Environ. Eco. 2011;29:34–8.
  43. 43. Thiyageshwari S, Ramanathan G. Uptake of nutrients as influenced by application of micronutrients and cytozyme to soybean in inceptisol. J. Soils Crops. 2001;11(1):1–6.
  44. 44. Malvi UR. Interaction of micronutrients with major nutrients with special reference to potassium. Karnataka J. Agric. Sci. 2011;24(1).
  45. 45. Meenakshi N, Vadivel E, Veeraragavathatham D, Kavitha M. Nutrient uptake and dry matter production as influenced by fertigation in bitter gourd (Momordica charantia L.). Crop Res. 2008;36(1,2&3):208–11.
  46. 46. Nadaf SA, Chidanandappa HM. Effect of zinc and boron application on distribution and contribution of zinc fractions to the total uptake of zinc by groundnut (Arachis hypogaea L.) in sandy loam soils of Karnataka, India. Legume Res. Int. J. 2015;38(5):598–602. https://doi.org/10.18805/lr.v38i5.5935
  47. 47. Shimi GJ. Input management for precision farming in banana. PhD (Ag) thesis, Kerala Agricultural University, Vellayani. 2014;203.
  48. 48. Balusamy M, Meyyazhagan N. Training manual on recent advances in pulses production technology. CASA, Tamil Nadu Agricultural University. 2000;113–5.
  49. 49. Ramachandrappa BK, Nanjappa HV, Soumya TM. Sensory parameters, nutrient content, yield and yield attributes of baby corn varieties as influenced by stages of harvest. Mysore J. Agric. Sci. 2007;41(1):1–7.
  50. 50. Kotangale VS, Bharambe PR, Katore JR, Ravankar HN. Effect of long term fertilization on yield and uptake of nutrients under sorghum-wheat cropping sequence in vertisol. J. Soil Crop. 2009;19:320-3.
  51. 51. Shivay YS. Importance of micronutrients management for increased crop productivity. J. Food Secur. 2010;1:42–53.

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