2025, Issue 7, Volume 17

EFFECT OF ORGANIC AND INORGANIC FERTILIZER APPLICATION ON GROWTH, YIELD ATTRIBUTE AND PRODUCTIVITY OF RICE CROP

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Anoop Kumar Maurya,1* Satendra Kumar2, Yogesh Kumar3, S. P. Singh4, Adesh Singh5 and Kamal Khilari6

1-4Department of Soil Science, Sardar Vallabhbhai Patel University of Agriculture

and Technology, Meerut, 250110

5Department of Agronomy, Sardar Vallabhbhai Patel University of Agriculture

and Technology, Meerut, 250110.

6Department of Plant Pathology, Sardar Vallabhbhai Patel University of Agriculture

and Technology, Meerut, 250110.

Email: anoopkumar5399@gamil.com

Received-03.07.2025, Revised-15.07.2025, Accepted-29.07.2025

Abstract: A field experiment was conducted at Crop Research Centre of SVPUAT, Meerut during kharif2024. The study aimed to assess the effects of various combinations of organic manures and inorganic fertilizers on rice growth, yield and yield attributes. The treatments were evaluated, including T1 (control), T2 (100% Recommended dose of fertilizer), T3 –75% RDF + 25% N, (Farm yard manure), T4 75% RDF + 25% N, (Vermicompost),T5 75% RDF + 25% N, (Poultry manure), T6 50% RDF + 25% N (FYM)+25% N (VC) T7 50% RDF + 25% N (FYM)+25% N (PM), T8  50% RDF + 25% N (VC)+25% N (PM),  and T9 (25% of RDF + FYM+VC+PM). The effect of the different dosesof inorganic sourceswith various organic manureson yield attributes and yield. Application of T9(25% RDF + FYM + VC + PM) significantly improved yield attributes such as panicle length, filled grains, test weight, and grain and straw yield. T9 recorded the highest yield, showing a 9% increase over sole RDF application T2.

Keywords: Farm yard manure, Organic manure, Poultry manure, Recommended dose of Fertilizer, Vermicompost

REFERENCES

Agegnehu, G. and Amede, T. (2017). Integrated soil fertility and plant nutrient management in tropical agro-ecosystems: A review. Pedosphere, 27(4): 662-680.

Google Scholar

Atiyeh, R. M., Arancon, N. Q., Edwards, C. A. and Metzger, J. D. (2000). Influence of earthworm-processed pig manure on the growth and yield of greenhouse tomatoes. Bioresource Technology, 75(1): 11–20. 

Google Scholar

Badman, W. S. (1942). A core sampler for soil studies. Soil Science Society of America Journal, 7(C), 223–226.

Google Scholar

Bhattacharyya, R., Ghosh, B. N., Mishra, P. K., Mandal, B., Rao, C. S., Sarkar, D. and Franzluebbers, A. J. (2015). Soil degradation in India: Challenges and potential solutions. Sustainability, 7(4): 3528-3570. 

Google Scholar

Bordoloi, J. and Kumar, M. (2017). Effects of tillage and biomass on soil quality and productivity of lowland rice farming by small-scale farmers in North Eastern India. Agricultural Research, 6(2): 117–124.

Google Scholar

Bouyoucos, G. J. (1962). Hydrometer method improved for making particle size analyses of soils. Agronomy Journal, 54(5), 464–465. 

Google Scholar

Chesnin, L. and Yien, C. H. (1951). Turbidimetric determination of available sulfates. Soil Science Society of America Journal, 15(2), 149–151.

Google Scholar

Das, A., Lal, R., Patel, D. P., Idapuganti, R. G., Layek, J., Ngachan, S. V., Ghosh, P. K., Dobermann, A. and Fairhurst, T. (2000). Rice: Nutrient disorders and nutrient management. International Rice Research Institute (IRRI), Los Baños, Philippines.

Google Scholar

Hanway, J. J. and Heidel, H. (1952). Soil analysis methods as used in Iowa State College Soil Testing Laboratory. Iowa Agriculture, 57, 1–13.

Google Scholar

Jackson, M.L. (1967) “Soil chemical Analysis” Prentice Hall of India. Pvt. Ltd., New Delhi.

Google Scholar

Kundu, A. L. and Mazumdar, D. (2008). Organic amendments influence soil organic carbon pools and rice-wheat productivity. Agriculture, Ecosystems & Environment, 128(1-2): 50-6.

Google Scholar

Lal, R. (2015). Restoring soil quality to mitigate soil degradation. Soil Science Society of America Journal, 79(1): 1–8. 

Google Scholar

Lindsay, W. L. and Norvell, W. A. (1978). Development of a DTPA soil test for zinc, iron, manganese, and copper. Soil Science Society of America Journal, 42(3), 421–428. 

Google Scholar

Mäder, P., Fishbach, A., Dubois, D., Gunst, L., Fried, P. and Niggli, U. (2002). Soil fertility and biodiversity in organic farming. Science, 296(5573): 1694-1697. 

Google Scholar

Olsen, S. R., Cole, C. V., Watanabe, F. S. and Dean, L. A. (1954). Estimation of available phosphorus in soils by extraction with sodium bicarbonate (No. 939). USDA Circular.

Google Scholar

Prasad, R. (2011). Nutrient management strategies for the rice-wheat cropping system in South Asia. Indian Journal of Agronomy, 56(4): 1-7.

Google Scholar

Pretty, J., Noble, A. D., Bossio, D., Dixon, J., Hine, R. E., Penning de Vries, F. W. T. and Morison, J. I. L. (2006). Resource-conserving agriculture increases yields in developing countries. Environmental Science & Technology, 40(4): 1114–1119. 

Google Scholar

Richards, L. A. (1954). Diagnosis and improvement of saline and alkali soils (USDA Handbook No. 60). U.S. Government Printing Office.

Google Scholar

Subbiah, B. V. and Asija, G. L. (1956). A rapid procedure for the estimation of available nitrogen in soils. Current Science, 25(8), 259–260.

Google Scholar

Vanlauwe, B., Bationo, A., Chianu, J., Giller, K. E., Merckx, R., Mokwunye, U., Ohiokpehai, O., Pypers, P., Tabo, R., Shepherd, K. D., Smaling, E. M. A., Woomer, P. L. and Sanginga, N. (2010). Integrated soil fertility management: Operational definition and consequences for implementation and dissemination. Experimental Agriculture, 46(1): 1–24. 

Google Scholar

Walkley, A. and Black, I. A. (1934). An examination of the Digestion method for determining soil organic matter and a proposed modification of the chromic acid titration method. Soil Science, 37(1), 29–38. 

Google Scholar

Yadav, R. L., Dwivedi, B. S., Prasad, K., Tomar, O. K., Shurpali, N. J. and Pandey, P. S. (2017). Yield trends, and changes in soil organic-C and available NPK in a long-term rice-wheat system under integrated use of manures and fertilisers. Field Crops Research, 102(1): 1-11.

Google Scholar