Nitrogen and phosphorus effects on the growth, phenology, heat and nutrients accumulation and yield of winter maize (Zea mays) in western Indo-Gangetic Plains


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Authors

  • EPIMAQUE NSANZABAGANWA National Agriculture Export Development Board, P. O. Box. 104, Kigali, Rwanda
  • T K DAS Indian Agricultural Research Institute, New Delhi 110 012
  • D S RANA Indian Agricultural Research Institute, New Delhi 110 012 India

https://doi.org/10.56093/ijas.v84i5.40494

Keywords:

Growth, Nitrogen, Phenophases, Phosphorus, Yield, Winter maize

Abstract

The results show that plant height, dry weight, crop growth rate (CGR) and leaf area index (LAI) of winter maize were increased with the increase in N levels, the highest values observed at the highest dose of 240 kg/ha. Nitrogen stress delayed tasseling and silking, but hastened maturity of maize. Nitrogen application at each dose tested caused a significant increase in grain yield over control, the highest increase was at 240 kg/ha. The effect of P on grain yield was also significant, and the highest yield was obtained at 26.4 kg/ha after which further increase in P level declined the yield. Thus, N and P individually and interactively influenced growth variables, appearance of phenological stages, heat and nutrient accumulation and yield in winter maize. The interaction between N and P for LAI, nutrient content and dry matter and heat accumulation was observed across physiological stages with higher values of most of these parameters observed at N 240 kg/ha and P 26.4 kg/ha. It is, therefore, concluded that, a combination of N 240 or 160 (being comparable with 240 kg/ha) kg/ha and P 26.4 kg/ha may be recommended for a significant improvement in winter maize growth, yield and nutrient and heat accumulation over a longer growing period under the western IGP conditions.

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References

Assuero S G, Mollier A and Pellerin S.2004. The decrease in growth of phosphorus-deficient maize leaves is related to a lower cell production. Plant Cell and Environment 27(7): 887– 95. DOI: https://doi.org/10.1111/j.1365-3040.2004.01194.x

Borras L, Slafer G A and Otegui M E. 2004. Seed dry weight response to source-sink manipulations in wheat, maize and soybean: a qualitative reappraisal. Field Crops Research 86: 131–46. DOI: https://doi.org/10.1016/j.fcr.2003.08.002

De Grazia J, Tittonell P A, Germinara D and Chiesa A. 2003. Phosphorus and nitrogen fertilization in sweet corn (Zea mays L.) var. sacchrata baily. Spanish Journal of Agricultural Research 1(2): 103–7. DOI: https://doi.org/10.5424/sjar/2003012-28

Dordas C. 2009. Dry matter, nitrogen and phosphorus accumulation, partitioning and remobilization as affected by N and P fertilization and source-sink relations. European Journal of Agronomy 30: 129–39. DOI: https://doi.org/10.1016/j.eja.2008.09.001

Fletcher A L, Moot D J and Stone P J. 2008. Radiation use efficiency and leaf photosynthesis of sweet corn in response to phosphorus in cool temperature environment. European Journal of Agronomy 29(1): 88–93. DOI: https://doi.org/10.1016/j.eja.2008.04.002

Hussaini M A, Ogunlela V B, Ramalan A A and Falaki A M. 2008. Mineral composition of dry season maize (Zea mays L.) in response to varying levels of nitrogen, phosphorus and irrigation at Kadawa, Nigeria. World Journal of Agricultural Sciences 4 (6): 775–80.

Kogbe J O S and Adediran J A. 2003. Influence of nitrogen, phosphorus and potassium application on the yield of maize in the savanna zone of Nigeria. African Journal of Biotechnology 2(10): 345–49. DOI: https://doi.org/10.5897/AJB2003.000-1071

Miralles D J and Slaffer G A. 2007. Sink limitation to yield in wheat: how could it be reduced? Journal of Agricultural Sciences 145:139–49. DOI: https://doi.org/10.1017/S0021859607006752

Nelson L B. 1956. The mineral nutrition of corn as related to its growth and culture. Advances in Agronomy 8: 321–75. DOI: https://doi.org/10.1016/S0065-2113(08)60693-8

Plenet D, Etchebest S, Mollier A and Pellerin S. 2000. Growth analysis of maize field crops grown under phosphorus deficiency. I. Leaf growth. Plant and Soil 223: 117–30. DOI: https://doi.org/10.1023/A:1004877111238

Pyrstupa P, Savin R and Slafer G A. 2004. Grain number and its relationship with dry matter, N and P in the spikes at the heading response to N x P fertilization in barley. Field Crops Research 90: 245–54. DOI: https://doi.org/10.1016/j.fcr.2004.03.001

Sinclair T R and Muchow R C. 2001. System analysis of plant traits to increase grain yield on limited water supplies. Agronomy Journal 93:263–70. DOI: https://doi.org/10.2134/agronj2001.932263x

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Submitted

2014-05-07

Published

2014-05-07

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Short-Communication

How to Cite

NSANZABAGANWA, E., DAS, T. K., & RANA, D. S. (2014). Nitrogen and phosphorus effects on the growth, phenology, heat and nutrients accumulation and yield of winter maize (Zea mays) in western Indo-Gangetic Plains. The Indian Journal of Agricultural Sciences, 84(5), 661–4. https://doi.org/10.56093/ijas.v84i5.40494
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