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Original Articles

Influence of chemical properties of soils on methane emission from rice paddies

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Pages 2449-2463 | Published online: 11 Nov 2008

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (4)

Kazuyuki Inubushi, Hiroki Saito, Hironori Arai, Kimio Ito, Koichi Endoh & Miwa M. Yashima. (2018) Effect of oxidizing and reducing agents in soil on methane production in Southeast Asian paddies. Soil Science and Plant Nutrition 64:1, pages 84-89.
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Yuichiro Furukawa, Yutaka Shiratori & Kazuyuki Inubushi. (2008) Depression of methane production potential in paddy soils by subsurface drainage systems. Soil Science and Plant Nutrition 54:6, pages 950-959.
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Hisatomi Harada, Hitomi Kobayashi & Hayato Shindo. (2007) Reduction in greenhouse gas emissions by no-tilling rice cultivation in Hachirogata polder, northern Japan: Life-cycle inventory analysis. Soil Science and Plant Nutrition 53:5, pages 668-677.
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Makoto Ikenaga, Susumu Asakawa, Yoshitetsu Muraoka & Makoto Kimura. (2004) Methanogenic archaeal communities in rice roots grown in flooded soil pots: Estimation by PCR-DGGE and sequence analyses. Soil Science and Plant Nutrition 50:5, pages 701-711.
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Articles from other publishers (35)

MUHAMMAD ASLAM ALI, SANJIT CHANDRA BARMAN, MD. ASHRAFUL ISLAM KHAN, MD. BADIUZZAMAN KHAN & HAFSA JAHAN HIYA. (2021) MITIGATION YIELD SCALED METHANE EMISSION FROM RICE GROWN IN WATER STRESS CONDITIONS WITH BIOCHAR AND SILICATE AMENDMENTS. International Journal of Big Data Mining for Global Warming 03:02.
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Mengdie Jiang, Peng Xu, Wei Zhou, Muhammad Shaaban, Jinsong Zhao, Tao Ren, Jianwei Lu & Ronggui Hu. (2020) Prior nitrogen fertilization regulates CH4 emissions from rice cultivation by increasing soil carbon storage in a rapeseed-rice rotation. Applied Soil Ecology 155, pages 103633.
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Hyun-Hwoi KU, Keiichi HAYASHI, Ruth AGBISIT & Gina VILLEGAS-PANGGA. (2020) Effect of calcium silicate on nutrient use of lowland rice and greenhouse gas emission from a paddy soil under alternating wetting and drying. Pedosphere 30:4, pages 535-543.
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Chris Pratt, Kate Kingston, Bronwyn Laycock, Ian Levett & Steven Pratt. (2020) Geo-Agriculture: Reviewing Opportunities through Which the Geosphere Can Help Address Emerging Crop Production Challenges. Agronomy 10:7, pages 971.
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Chuan Tong, Min Luo, Jiafang Huang, Chenxin She, Yalan Li & Peng Ren. (2020) Greenhouse gas fluxes and porewater geochemistry following short-term pulses of saltwater and Fe(III) in a subtropical tidal freshwater estuarine marsh. Geoderma 369, pages 114340.
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Joshua Humphreys, Kristofor R. Brye, Casey Rector & Edward E. Gbur. (2019) Methane emissions from rice across a soil organic matter gradient in Alfisols of Arkansas, USA. Geoderma Regional 16, pages e00200.
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Singh Alpana, P. Vishwakarma, T.K. Adhya, K. Inubushi & S.K. Dubey. (2017) Molecular ecological perspective of methanogenic archaeal community in rice agroecosystem. Science of The Total Environment 596-597, pages 136-146.
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Fengling Ren, Xubo Zhang, Jian Liu, Nan Sun, Lianhai Wu, Zhongfang Li & Minggang Xu. (2017) A synthetic analysis of greenhouse gas emissions from manure amended agricultural soils in China. Scientific Reports 7:1.
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Alden D. Smartt, Kristofor R. Brye, Christopher W. Rogers, Richard J. Norman, Edward E. Gbur, Jarrod T. Hardke & Trenton L. Roberts. (2016) Previous Crop and Cultivar Effects on Methane Emissions from Drill-Seeded, Delayed-Flood Rice Grown on a Clay Soil. Applied and Environmental Soil Science 2016, pages 1-13.
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Anu Karvinen, Sanna Saarnio & Paula Kankaala. (2015) Sediment iron content does not play a significant suppressive role on methane emissions from boreal littoral sedge (Carex) vegetation. Aquatic Botany 127, pages 70-79.
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Weiqi Wang, Derrick Y. F. Lai, Shouchun Li, Pil Joo Kim, Congsheng Zeng, Pengfei Li & Yongchao Liang. (2014) Steel slag amendment reduces methane emission and increases rice productivity in subtropical paddy fields in China. Wetlands Ecology and Management 22:6, pages 683-691.
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Yong Li, Takeshi Watanabe, Jun Murase, Susumu Asakawa & Makoto Kimura. (2014) Abundance and composition of ammonia oxidizers in response to degradation of root cap cells of rice in soil microcosms. Journal of Soils and Sediments 14:9, pages 1587-1598.
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Pengfu Hou, Ganghua Li, Shaohua Wang, Xin Jin, Yiming Yang, Xiaoting Chen, Chengqiang Ding, Zhenghui Liu & Yanfeng Ding. (2013) Methane emissions from rice fields under continuous straw return in the middle-lower reaches of the Yangtze River. Journal of Environmental Sciences 25:9, pages 1874-1881.
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T. B. Dakua, L. Rangan & Sudip Mitra. 2013. Crop Improvement Under Adverse Conditions. Crop Improvement Under Adverse Conditions 65 89 .
Chang Hoon Lee, Sang Yoon Kim, Maria B. Villamil, Prabhat Pramanik, Chang Ok Hong & Pil Joo Kim. (2011) Different response of silicate fertilizer having electron acceptors on methane emission in rice paddy soil under green manuring. Biology and Fertility of Soils 48:4, pages 435-442.
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Kewei Yu. 2011. Understanding Greenhouse Gas Emissions from Agricultural Management. Understanding Greenhouse Gas Emissions from Agricultural Management 121 134 .
Moniruzzaman Khan Eusufzai, Takeshi Tokida, Masumi Okada, Shu-ichi Sugiyama, Guang Cheng Liu, Miyuki Nakajima & Ryoji Sameshima. (2010) Methane emission from rice fields as affected by land use change. Agriculture, Ecosystems & Environment 139:4, pages 742-748.
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T. Tokida, T. Fumoto, W. Cheng, T. Matsunami, M. Adachi, N. Katayanagi, M. Matsushima, Y. Okawara, H. Nakamura, M. Okada, R. Sameshima & T. Hasegawa. (2010) Effects of free-air CO<sub>2</sub> enrichment (FACE) and soil warming on CH<sub>4</sub> emission from a rice paddy field: impact assessment and stoichiometric evaluation. Biogeosciences 7:9, pages 2639-2653.
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T. Tokida, T. Fumoto, W. Cheng, T. Matsunami, M. Adachi, N. Katayanagi, M. Matsushima, Y. Okawara, H. Nakamura, M. Okada, R. Sameshima & T. Hasegawa. (2010) Effects of free-air CO<sub>2</sub> enrichment (FACE) and soil warming on CH<sub>4</sub> emission from a rice paddy field: impact assessment and stoichiometric evaluation. Biogeosciences Discussions 7:2, pages 1863-1903.
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Muhammad Aslam Ali, Chang Hoon Lee, Sang Yoon Kim & Pil Joo Kim. (2009) Effect of industrial by-products containing electron acceptors on mitigating methane emission during rice cultivation. Waste Management 29:10, pages 2759-2764.
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Ranjan Mukherjee, Animita Barua, Ujjaini Sarkar, Bijay Kumar De & Alak Kumar Mandal. (2009) Role of Alternative Electron Acceptors (AEA) to control methane flux from waterlogged paddy fields: Case studies in the southern part of West Bengal, India. International Journal of Greenhouse Gas Control 3:5, pages 664-672.
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Muhammad Aslam Ali, Chang Hoon Lee, Yong Bok Lee & Pil Joo Kim. (2009) Silicate fertilization in no-tillage rice farming for mitigation of methane emission and increasing rice productivity. Agriculture, Ecosystems & Environment 132:1-2, pages 16-22.
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Bin Huang, Kewei Yu & Robert P. Gambrell. (2009) Effects of ferric iron reduction and regeneration on nitrous oxide and methane emissions in a rice soil. Chemosphere 74:4, pages 481-486.
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S. N. Singh, Larisha Tyagi & Sadhna Tiwari. 2009. Climate Change and Crops. Climate Change and Crops 345 375 .
Muhammad Aslam Ali, Ju Hwan Oh & Pil Joo Kim. (2008) Evaluation of silicate iron slag amendment on reducing methane emission from flood water rice farming. Agriculture, Ecosystems & Environment 128:1-2, pages 21-26.
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Muhammad Aslam Ali, Chang Hoon Lee & Pil Joo Kim. (2007) Effect of silicate fertilizer on reducing methane emission during rice cultivation. Biology and Fertility of Soils 44:4, pages 597-604.
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Kazunori Minamikawa, Naoki Sakai & Kazuyuki Yagi. (2006) Methane Emission from Paddy Fields and its Mitigation Options on a Field Scale. Microbes and Environments 21:3, pages 135-147.
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Udo Jäckel, Salvatore Russo & Sylvia Schnell. (2005) Enhanced iron reduction by iron supplement: A strategy to reduce methane emission from paddies. Soil Biology and Biochemistry 37:11, pages 2150-2154.
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Akira Watanabe, Hiromi Yamada & Makoto Kimura. (2005) Analysis of temperature effects on seasonal and interannual variation in CH4 emission from rice-planted pots. Agriculture, Ecosystems & Environment 105:1-2, pages 439-443.
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Seiichi Nishimura, Takuji Sawamoto, Hiroko Akiyama, Shigeto Sudo & Kazuyuki Yagi. (2004) Methane and nitrous oxide emissions from a paddy field with Japanese conventional water management and fertilizer application. Global Biogeochemical Cycles 18:2, pages n/a-n/a.
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Ralf Conrad & Peter Frenzel. 2003. Encyclopedia of Agrochemicals. Encyclopedia of Agrochemicals.
Xiaoyuan Yan, Toshimasa Ohara & Hajime Akimoto. (2003) Development of region-specific emission factors and estimation of methane emission from rice fields in the East, Southeast and South Asian countries. Global Change Biology 9:2, pages 237-254.
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Ralf Conrad & Peter Frenzel. 2003. Encyclopedia of Environmental Microbiology. Encyclopedia of Environmental Microbiology.
Kanwar L. Sahrawat. 2003. 169 201 .
Udo Jäckel & Sylvia Schnell. (2000) Suppression of methane emission from rice paddies by ferric iron fertilization. Soil Biology and Biochemistry 32:11-12, pages 1811-1814.
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