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Journal of Integrative Agriculture  2017, Vol. 16 Issue (11): 2586-2596    DOI: 10.1016/S2095-3119(17)61672-1
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Soil mineral nitrogen and yield-scaled soil N2O emissions lowered by reducing nitrogen application and intercropping with soybean for sweet maize production in southern China
TANG Yi-ling*, YU Ling-ling*, GUAN Ao-mei , ZHOU Xian-yu, WANG Zhi-guo, GOU Yong-gang , WANG Jian-wu
Institute of Tropical and Subtropical Ecology/Key Laboratory of Agro-environment in the Tropics, Ministry of Agriculture/Key Laboratory of Agroecology and Rural Environment of Guangdong Regular Higher Education Institutions, South China Agricultural University, Guangzhou 510642, P.R.China
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Abstract      The increasing demand for fresh sweet maize (Zea mays L. saccharata) in southern China has prioritized the need to find solutions to the environmental pollution caused by its continuous production and high inputs of chemical nitrogen fertilizers.  A promising method for improving crop production and environmental conditions is to intercrop sweet maize with legumes.  Here, a three-year field experiment was conducted to assess the influence of four different cropping systems (sole sweet maize (SS), sole soybean (SB), two rows sweet maize-three rows soybean (S2B3) intercropping, and two rows sweet maize-four rows soybean (S2B4) intercropping), together with two rates of N fertilizer application (300 and 360 kg N ha–1) on grain yield, residual soil mineral N, and soil N2O emissions in southern China.  Results showed that in most case, intercropping achieved yield advantages (total land equivalent ratio (TLER=0.87–1.25) was above one).  Moreover, intercropping resulted in 39.8% less soil mineral N than SS at the time of crop harvest, averaged over six seasons (spring and autumn in each of the three years of the field experiment).  Generally, intercropping and reduced-N application (300 kg N ha–1) produced lower cumulative soil N2O and yield-scaled soil N2O emissions than SS and conventional-N application (360 kg N ha–1), respectively.  S2B4 intercropping with reduced-N rate (300 kg N ha–1) showed the lowest cumulative soil N2O (mean value=0.61 kg ha–1) and yield-scaled soil N2O (mean value=0.04 kg t–1) emissions.  Overall, intercropping with reduced-N rate maintained sweet maize production, while also reducing environmental impacts.  The system of S2B4 intercropping with reduced-N rate may be the most sustainable and environmentally friendly cropping system.   
Keywords:  sweet maize-soybean intercrop              cropping system              N fertilizer rate              grain yield       soil mineral N       soil N2O emissions  
Received: 18 January 2017   Accepted:
Fund: 

The study was supported by the Key Technologies R&D Program of China during the 12th Five-year Plan period (2012BAD14B16-04) and the Science and Technology Development Program of Guangdong, China (2012A020100003 and 2015B090903077).

Corresponding Authors:  Correspondence WANG Jian-wu, Tel/Fax: +86-20-38604886, E-mail: wangjw@scau.edu.cn    
About author:  TANG Yi-ling, E-mail: tangyiling@stu.scau.edu.cn; YU Ling-ling, E-mail: lingling2013@scau.edu.cn * These authors contributed equally to this study.

Cite this article: 

TANG Yi-ling, YU Ling-ling, GUAN Ao-mei , ZHOU Xian-yu, WANG Zhi-guo, GOU Yong-gang , WANG Jian-wu . 2017. Soil mineral nitrogen and yield-scaled soil N2O emissions lowered by reducing nitrogen application and intercropping with soybean for sweet maize production in southern China. Journal of Integrative Agriculture, 16(11): 2586-2596.

Bedoussac L, Journet E P, Hauggaard-Nielsen H, Naudin C, Corre-Hellou G, Jensen E S, Prieur L, Justes E. 2015. Ecological principles underlying the increase of productivity achieved by cereal-grain legume intercrops in organic farming. A review. Agronomy for Sustainable Development, 35, 911–935.

Bouwman A F, Beusen A H W, Griffioen J, Van Groenigen J W, Hefting M M, Oenema O, Van Puijenbroek P J T M, Seitzinger S, Slomp C P, Stehfest E. 2013. Global trends and uncertainties in terrestrial denitrification and N2O emissions. Philosophical Transactions of the Royal Society of London (B: Biological Sciences), 368, 20130112.

Brooker R W, Bennett A E, Cong W F, Daniell T J, George T S, Hallett P D, Hawes C, Iannetta P P M, Jones H G, Karley A J, Li L, McKenzie B M, Pakeman R J, Paterson E, Schöb C, Shen J B, Squire G, Watson C A, Zhang C C, Zhang F S, et al. 2015. Improving intercropping: A synthesis of research in agronomy, plant physiology and ecology. New Phytologist, 206, 107–117.

Chen J S, Xu P Z, Tang S H, Zhang F B, Xie K Z, Huang X. 2008. Characteristics of NPK nutrition as affected by fertilization for fall-sown sweet corn. Chinese Agricultural Science Bulletin, 24, 272–277. (in Chinese)

Chen J S, Xu P Z, Tang S H, Zhang F B, Xie K Z, Huang X. 2010. Effects of fertilization on cumulating characteristics of dried matter mass of sweet corn. Plant Nutrition and Fertilizer Science, 16, 58–64. (in Chinese)

Cong W F, Hoffland E, Li L, Six J, Sun J H, Bao X G, Zhang F S, van der Werf W. 2015. Intercropping enhances soil carbon and nitrogen. Global Change Biology, 21, 1715–1726.

Dyer L, Oelbermann M, Echarte L. 2012. Soil carbon dioxide and nitrous oxide emissions during the growing season from temperate maize-soybean intercrops. Journal of Plant Nutrition and Soil Science, 175, 394–400.

Eaton A D, Clesceri L S, Greenberg A E. 1999. Standard Methods for the Examination of Water and Wastewater. 20th ed. The American Public Health Association  (APHA), the American Water Works Association (AWWA), the Water Environment Federation (WEF), Washington, D.C., USA.

Emteryd O. 1989. Chemical and Physical Analysis of Inorganic Nutrients in Plant, Soil, Water and Air. Department of Forest Site Research, Swedish University of Agricultural Sciences,  Sweden. pp. 156–159.

Gou F, van Ittersum M K, Wang G Y, van der Putten P E L, van der Werf W. 2016. Yield and yield components of wheat and maize in wheat-maize intercropping in the Netherlands. European Journal of Agronomy, 76, 17–27.

Hoben J P, Gehl R J, Millar N, Grace P R, Robertson G P. 2011. Nonlinear nitrous oxide (N2O) response to nitrogen fertilizer in on-farm corn crops of the US Midwest. Global Change Biology, 17, 1140–1152.

Hu F L, Gan Y T, Chai Q, Feng F X, Zhao C, Yu A Z, Mu Y P, Zhang Y. 2016. Boosting system productivity through the improved coordination of interspecific competition in maize/pea strip intercropping. Field Crops Research, 198, 50–60.

Huang J X, Chen Y Q, Sui P, Nie S W, Gao W S. 2014. Soil nitrous oxide emissions under maize-legume intercropping system in the North China Plain. Journal of Integrative Agriculture, 13, 1363–1372.

Jantalia C P, dos Santos H P, Urquiaga S, Boddey R M, Alves B J R. 2008. Fluxes of nitrous oxide from soil under different crop rotations and tillage systems in the South of Brazil. Nutrient Cycling in Agroecosystems, 82, 161–173.

Jensen E S, Peoples M B, Boddey R M, Greeshoff P M, Hauggaard-Nielsen H, Alves B J R, Morrison M J. 2012. Legumes for mitigation of climate change and the provision of feedstock for biofuels and biorefineries. A review. Agronomy for Sustainable Development, 32, 329–364.

Li C J, Li Y Y, Yu C B, Sun J H, Christie P, An M, Zhang F S, Li L. 2011. Crop nitrogen use and soil mineral nitrogen accumulation under different crop combinations and patterns of strip intercropping in northwest China. Plant and Soil, 342, 221–231.

Li L, Zhang L Z, Zhang F S. 2013. Crop mixtures and the mechanisms of overyielding. In: Levin A S, ed., Encyclopedia of Biodiversity. Waltham MA, USA. pp. 382–395.

Li Q Z, Sun J H, Wei X J, Christie P, Zhang F S, Li L. 2011. Overyielding and interspecific interactions mediated by nitrogen fertilization in strip intercropping of maize with faba bean, wheat and barley. Plant and Soil, 339, 147–161.

Li W X, Li L, Sun J H, Guo T W, Zhang F S, Bao X G, Peng A, Tang C. 2005. Effects of intercropping and nitrogen application on nitrate present in the profile of an Orthic Anthrosol in Northwest China. Agriculture, Ecosystems and Environment, 105, 483–491.

Liu W N, Wan Z, Gan Y Y, Hu J G, Yin Y. 2016. Development of situation and countermeasures of Guangdong sweet corn industry in 2015. Guangdong Agricultural Sciences, 3, 12–16. (in Chinese)

Luo S S, Yu L L, Liu Y, Zhang Y, Yang W T, Li Z X, Wang J W. 2016 Effects of reduced nitrogen input on productivity and N2O emissions in a sugarcane/soybean intercropping system. European Journal of Agronomy, 81, 78–85.

Ma B L, Wu T Y, Tremblay N, Deen W, Morrison M J, Mclaughlin N B, Gregorich E G, Stewart G. 2010. Nitrous oxide fluxes from corn fields: On-farm assessment of the amount and timing of nitrogen fertilizer. Global Change Biology, 16, 156–170.

Mariotti M, Masoni A, Ercoli L, Arduini I. 2015. Nitrogen leaching and residual effect of barley/field bean intercropping. Plant Soil Environment, 61, 60–65.

Migliorati M D A, Parton W J, Grosso S J D, Grace P R, Bell M J, Strazzabosco A, Rowlings W, Scheer C, Harch G. 2015. Legumes or nitrification inhibitors to reduce N2O emissions from subtropical cereal cropping systems in Oxisols? Agriculture, Ecosystems and Environment, 213, 228–240.

Pappa V A, Rees R M, Walker R L, Baddeley J A, Watson C A. 2011. Nitrous oxide emissions and nitrate leaching in an arable rotation resulting from the presence of an intercrop. Agriculture, Ecosystems and Environment, 141, 153–161.

Pelzer E, Bazot M, Makowski D, Corre-Hellou G, Naudin C, Al Rifaï M, Baranger E, Bedoussac L, Biarnès V, Boucheny P, Carrouée B, Dorvillez D, Foissy D, Gaillard B, Guichard L, Mansard M C, Omon B, Prieur L, Yvergniaux M, Justes E, et al. 2012. Pea-wheat intercrops in low-input conditions combine high economic performances and low environmental impacts. European Journal of Agronomy, 40, 39–53.

Regehr A, Oelbermann M, Videla C, Echarte L. 2015. Gross nitrogen mineralization and immobilization in temperate maize-soybean intercrops. Plant and Soil, 391, 353–365.

Reverchon F, Bai S H, Liu X, Blumfield T J. 2015. Tree plantation systems influence nitrogen retention and the abundance of nitrogen functional genes in the solomon islands. Frontiers in Microbiology, 6, 1439.

Rusinamhodzi L, Corbeels M, Nyamangara J, Giller K E. 2012. Maize-grain legume intercropping is an attractive option for ecological intensification that reduces climatic risk for smallholder farmers in central Mozambique. Field Crops Research, 136, 12–22.

Singh I, Langyan S, Yadava P. 2014. Sweet corn and corn-based sweeteners. Sugar Tech, 16, 144–149.

Singh S, Singh J S, Kashyap A K. 1999. Methane consumption by soils of dryland rice agriculture: Influence of varieties and N-fertilization. Chemosphere, 38, 175–189.

USDA (United States Department of Agriculture). 2010. US sweet corn statistics. [2013-09-01]. http://usda.mannlib.cornell.edu/MannUsda/viewDocumentInfo.do?documentID=1564

Willey R. 1979. Intercropping - Its importance and research needs. 1. Competition and yield advantages. Field Crop Abstracts, 32, 1–10.

Williams M M. 2014. Few crop traits accurately predict variables important to productivity of processing sweet corn. Field Crops Research, 157, 20–26.

Xia H Y, Zhao J H, Sun J H, Bao X G, Christie P, Zhang F S, Li L. 2013. Dynamics of root length and distribution and shoot biomass of maize as affected by intercropping with different companion crops and phosphorus application rates. Field Crops Research, 150, 52–62.

Yu Y, Stomph T J, Makowski D, van der Werf W. 2015. Temporal niche differentiation increases the land equivalent ratio of annual intercrops: A meta-analysis. Field Crops Research, 184, 133–144.

Zhou M H, Zhu B, Butterbach-Bahl K, Wang X G, Zheng X H. 2014. Nitrous oxide emissions during the non-rice growing seasons of two subtropical rice-based rotation systems in southwest China. Plant and Soil, 383, 401–414.
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