Carbon dioxide flux and microbial responses under multiple-nutrient manipulations in a subtropical forest soil
暂无分享,去创建一个
E. Hou | Xianzhen Luo | Huiying Lin | M. M. Ibrahim | Zhaofeng Chang | Zhimin Li | H. Ye
[1] E. Hou,et al. Biochar rate-dependent regulation of extended nitrogen supply by modifying stable aggregates-N and microbial responses , 2023, Carbon Research.
[2] Weiting Zhang,et al. Impacts of MgO- and sepiolite-biochar composites on N-partitioning and dynamics of N-cycling bacteria in a soil-maize system: A field-based 15N-urea tracer study , 2023, Geoderma.
[3] Jingyun Fang,et al. Aboveground net primary productivity mediates the responses of soil respiration to nutrient additions in two tropical montane rainforests , 2022, Agricultural and Forest Meteorology.
[4] Subhan Danish,et al. The soil pH and heavy metals revealed their impact on soil microbial community. , 2022, Journal of environmental management.
[5] Jingyun Fang,et al. Phosphorus addition decreases soil fungal richness and alters fungal guilds in two tropical forests , 2022, Soil Biology and Biochemistry.
[6] Chao‐Chen Hu,et al. Levels and variations of soil bioavailable nitrogen among forests under high atmospheric nitrogen deposition. , 2022, The Science of the total environment.
[7] De-qiang Zhang,et al. Increased interactions between iron oxides and organic carbon under acid deposition drive large increases in soil organic carbon in a tropical forest in southern China , 2022, Biogeochemistry.
[8] Ying‐ping Wang,et al. Mycorrhizal fungi alleviate acidification‐induced phosphorus limitation: Evidence from a decade‐long field experiment of simulated acid deposition in a tropical forest in south China , 2022, Global change biology.
[9] S. Xing,et al. Field-applied biochar-based MgO and sepiolite composites possess CO2 capture potential and alter organic C mineralization and C-cycling bacterial structure in fertilized soils. , 2021, The Science of the total environment.
[10] Yulin Chen,et al. Biochar interaction with chemical fertilizer regulates soil organic carbon mineralization and the abundance of key C-cycling-related bacteria in rhizosphere soil , 2021 .
[11] Yongchuan Yang,et al. Supplementary material to "Global patterns and drivers of soil total phosphorus concentration" , 2021, Earth System Science Data.
[12] K. Toyota,et al. Priming effects induced by C and N additions in relation to microbial biomass turnover in Japanese forest soils , 2021, Applied Soil Ecology.
[13] Shuo Jiao,et al. Linking Bacterial-Fungal Relationships to Microbial Diversity and Soil Nutrient Cycling , 2021, mSystems.
[14] Dong Wang,et al. Concentration and biodegradability of dissolved organic carbon derived from soils: A global perspective. , 2021, The Science of the total environment.
[15] Atul K. Jain,et al. Global Carbon Budget 2020 , 2020, Earth System Science Data.
[16] T. A. Black,et al. Spatial and temporal variations in global soil respiration and their relationships with climate and land cover , 2020, Science Advances.
[17] Qiang He,et al. Global nitrogen input on wetland ecosystem: The driving mechanism of soil labile carbon and nitrogen on greenhouse gas emissions , 2020, Environmental science and ecotechnology.
[18] R. Mikutta,et al. Sorption competition with natural organic matter as mechanism controlling silicon mobility in soil , 2020, Scientific Reports.
[19] Biqing Zhou,et al. Biochar-fertilizer interaction modifies N-sorption, enzyme activities and microbial functional abundance regulating nitrogen retention in rhizosphere soil. , 2020, The Science of the total environment.
[20] Jiafa Luo,et al. Responses of soil microbial communities and functions associated with organic carbon mineralization to nitrogen addition in a Tibetan grassland , 2020 .
[21] Dejun Li,et al. Wet and Dry Nitrogen Depositions in the Pearl River Delta, South China: Observations at Three Typical Sites With an Emphasis on Water‐Soluble Organic Nitrogen , 2020, Journal of Geophysical Research: Atmospheres.
[22] C. Schadt,et al. Phosphorus rather than nitrogen enhances CO2 emissions in tropical forest soils: Evidence from a laboratory incubation study , 2020, European Journal of Soil Science.
[23] Chao Wang,et al. Soil Nutrients Drive Function and Composition of phoC-Harboring Bacterial Community in Acidic Soils of Southern China , 2019, Front. Microbiol..
[24] S. Wright. Plant responses to nutrient addition experiments conducted in tropical forests , 2019, Ecological Monographs.
[25] B. Zhu,et al. A global meta-analysis of soil respiration and its components in response to phosphorus addition , 2019, Soil Biology and Biochemistry.
[26] J. Rousk,et al. Microbial growth and carbon use efficiency in soil: Links to fungal-bacterial dominance, SOC-quality and stoichiometry , 2019, Soil Biology and Biochemistry.
[27] Cong Wang,et al. Testing potassium limitation on soil microbial activity in a sub-tropical forest , 2018, Journal of Forestry Research.
[28] R. Vargas,et al. Globally rising soil heterotrophic respiration over recent decades , 2018, Nature.
[29] M. Kirk,et al. pH as a Primary Control in Environmental Microbiology: 1. Thermodynamic Perspective , 2018, Front. Environ. Sci..
[30] Keping Ma,et al. Carbon pools in China’s terrestrial ecosystems: New estimates based on an intensive field survey , 2018, Proceedings of the National Academy of Sciences.
[31] K. Treseder,et al. Nutrient limitation of soil microbial processes in tropical forests , 2018 .
[32] F. Sabater,et al. Soil water content drives spatiotemporal patterns of CO 2 and N 2 O emissions from a Mediterranean riparian forest soil , 2017 .
[33] Kai Yue,et al. Different Responses of Terrestrial C, N, and P Pools and C/N/P Ratios to P, NP, and NPK Addition: a Meta-Analysis , 2017, Water, Air, & Soil Pollution.
[34] K. Nkongolo,et al. Microbial Response to Soil Liming of Damaged Ecosystems Revealed by Pyrosequencing and Phospholipid Fatty Acid Analyses , 2017, PloS one.
[35] Anne C. S. McIntosh,et al. Extraction and Analysis of Microbial Phospholipid Fatty Acids in Soils , 2016, Journal of visualized experiments : JoVE.
[36] S. Hobbie,et al. Mechanisms driving the soil organic matter decomposition response to nitrogen enrichment in grassland soils , 2016 .
[37] Guoyi Zhou,et al. Potential effects of warming on soil respiration and carbon sequestration in a subtropical forest , 2016, Plant and Soil.
[38] K. Anderson‐Teixeira,et al. Carbon dynamics of mature and regrowth tropical forests derived from a pantropical database (TropForC‐db) , 2016, Global change biology.
[39] P. Marschner,et al. Soil respiration, microbial biomass and nutrient availability in soil after repeated addition of low and high C/N plant residues , 2016, Biology and Fertility of Soils.
[40] Hao Chen,et al. Effects of nitrogen and phosphorus additions on soil microbial biomass and community structure in two reforested tropical forests , 2015, Scientific Reports.
[41] J. Powers,et al. Nutrient addition effects on tropical dry forests: a mini-review from microbial to ecosystem scales , 2015, Front. Earth Sci..
[42] Chengrong Chen,et al. Phosphatase activity in relation to key litter and soil properties in mature subtropical forests in China. , 2015, The Science of the total environment.
[43] S. Niu,et al. Soil carbon fractions in grasslands respond differently to various levels of nitrogen enrichments , 2014, Plant and Soil.
[44] J. Knops,et al. Effects of Nitrogen and Phosphorus Fertilization on Soil Carbon Fractions in Alpine Meadows on the Qinghai-Tibetan Plateau , 2014, PloS one.
[45] G. Palumbo,et al. Review on iron availability in soil: interaction of Fe minerals, plants, and microbes , 2014, Journal of Soils and Sediments.
[46] Hao Chen,et al. Effects of Experimental Nitrogen and Phosphorus Addition on Litter Decomposition in an Old-Growth Tropical Forest , 2013, PloS one.
[47] Y. Malhi,et al. Nutrient limitation in rainforests and cloud forests along a 3,000-m elevation gradient in the Peruvian Andes , 2013, Oecologia.
[48] Peter E. Thornton,et al. A global analysis of soil microbial biomass carbon, nitrogen and phosphorus in terrestrial ecosystems , 2013 .
[49] Jizhong Zhou,et al. Microbial Mechanisms Mediating Increased Soil C Storage under Elevated Atmospheric N Deposition , 2012, Applied and Environmental Microbiology.
[50] Joshua P. Schimel,et al. Microbial control over carbon cycling in soil , 2012, Front. Microbio..
[51] J. Lehmann,et al. Comparison of Wet-Digestion and Dry-Ashing Methods for Total Elemental Analysis of Biochar , 2012 .
[52] Benjamin L Turner,et al. Tropical tree seedling growth responses to nitrogen, phosphorus and potassium addition , 2012 .
[53] M. Klotz,et al. The Microbial Sulfur Cycle , 2011, Front. Microbio..
[54] Michael Kaspari,et al. Potassium, phosphorus, or nitrogen limit root allocation, tree growth, or litter production in a lowland tropical forest. , 2011, Ecology.
[55] J. Powers,et al. Macro- and micronutrient effects on decomposition of leaf litter from two tropical tree species: inferences from a short-term laboratory incubation , 2011, Plant and Soil.
[56] R. Beinart,et al. Thermodynamics and Kinetics of Sulfide Oxidation by Oxygen: A Look at Inorganically Controlled Reactions and Biologically Mediated Processes in the Environment , 2011, Front. Microbio..
[57] Mark E. Harmon,et al. Forest sector carbon management, measurement and verification, and discussion of policy related to climate change , 2011 .
[58] J. Mo,et al. Input and output of dissolved organic and inorganic nitrogen in subtropical forests of South China under high air pollution , 2007 .
[59] F. Hagedorn,et al. How strongly can forest management influence soil carbon sequestration , 2007 .
[60] S. Scheu,et al. Long-term effects of seasonal and diurnal temperature fluctuations on carbon dioxide efflux from a forest soil , 2006 .
[61] J. Six,et al. Bacterial and Fungal Contributions to Carbon Sequestration in Agroecosystems , 2006 .
[62] K. Paustian,et al. Measuring and understanding carbon storage in afforested soils by physical fractionation , 2002 .
[63] G. Pinay,et al. Seasonal dynamics of denitrification along topohydrosequences in three different riparian wetlands. , 2002, Journal of environmental quality.
[64] E. Bååth,et al. The use of phospholipid fatty acid analysis to estimate bacterial and fungal biomass in soil , 1996, Biology and Fertility of Soils.
[65] W. J. Dyer,et al. A rapid method of total lipid extraction and purification. , 1959, Canadian journal of biochemistry and physiology.
[66] Qingpeng Yang,et al. High quality litters with faster initial decomposition produce more stable residue remaining in a subtropical forest ecosystem , 2022, CATENA.
[67] Jian Deng,et al. Soil dissolved carbon and nitrogen dynamics along a revegetation chronosequence of Caragana korshinskii plantations in the Loess hilly region of China , 2022, CATENA.
[68] Santosh Kumar Mehar,et al. Carbon Sequestration and the Significance of Soil Fungi in the Process , 2018 .
[69] H. Spiegel,et al. Soil Organic Matter and Nutrient Dynamics Following Different Management of Crop Residues at Two Sites in Austria , 2018 .
[70] Jitendra Kumar,et al. Root structural and functional dynamics in terrestrial biosphere models--evaluation and recommendations. , 2015, The New phytologist.
[71] Benjamin L Turner,et al. The response of microbial biomass and hydrolytic enzymes to a decade of nitrogen, phosphorus, and potassium addition in a lowland tropical rain forest , 2013, Biogeochemistry.
[72] J. Houghton,et al. Climate change 2001 : the scientific basis , 2001 .
[73] L. Rustad,et al. Controls on soil respiration: Implications for climate change , 2000 .
[74] P. Brookes,et al. AN EXTRACTION METHOD FOR MEASURING SOIL MICROBIAL BIOMASS C , 1987 .