Soil organic matter enhances aboveground biomass in alpine grassland under drought
暂无分享,去创建一个
Huiying Liu | Y. Zhao | Xia Wang | Silong Jiang | Xiaohe Zhou | Jia Li | Yuanye Zhang | Jinhong Wu | Yuxin Sun | Tao Deng | Fei Chen | Fei Chen
[1] M. Estiarte,et al. Field experiments underestimate aboveground biomass response to drought , 2022, Nature Ecology & Evolution.
[2] Xiaoke Zhang,et al. Organic substitutions improve soil quality and maize yield through increasing soil microbial diversity , 2022, Journal of Cleaner Production.
[3] I. C. Prentice,et al. Atmospheric dryness reduces photosynthesis along a large range of soil water deficits , 2022, Nature Communications.
[4] G. O. Awe,et al. Onion-forage cropping systems on a Vertic Argiudoll in Uruguay: Onion yield and soil organic matter, aggregation, porosity and permeability , 2022, Soil and Tillage Research.
[5] B. Minasny,et al. Ensuring planetary survival: the centrality of organic carbon in balancing the multifunctional nature of soils , 2022, Critical Reviews in Environmental Science and Technology.
[6] B. Fu,et al. Drivers and impacts of changes in China’s drylands , 2021, Nature Reviews Earth & Environment.
[7] M. Bradford,et al. Positive associations of soil organic matter and crop yields across a regional network of working farms , 2021, Soil Science Society of America Journal.
[8] Huiqing Liu,et al. Climate and geochemistry interactions at different altitudes influence soil organic carbon turnover times in alpine grasslands , 2021 .
[9] B. Schmid,et al. Aridity-driven shift in biodiversity–soil multifunctionality relationships , 2021, Nature Communications.
[10] W. Buermann,et al. Increasing impact of warm droughts on northern ecosystem productivity over recent decades , 2021, Nature Climate Change.
[11] W. Deen,et al. Long-term crop rotation diversification enhances maize drought resistance through soil organic matter , 2021, Environmental Research Letters.
[12] M. Keller,et al. Changes in global terrestrial live biomass over the 21st century , 2021, Science Advances.
[13] C. Kucharik,et al. Soil-dependent responses of US crop yields to climate variability and depth to groundwater , 2021 .
[14] Daniel A. Kane,et al. Soil organic matter protects US maize yields and lowers crop insurance payouts under drought , 2021, Environmental Research Letters.
[15] T. Kuyper,et al. Eco-functionality of organic matter in soils , 2020, Plant and Soil.
[16] B. Zhu,et al. Effects of warming on carbon and nitrogen cycling in alpine grassland ecosystems on the Tibetan Plateau: A meta-analysis , 2020 .
[17] C. Wagner-Riddle,et al. Soil Organic Matter as Catalyst of Crop Resource Capture , 2020, Frontiers in Environmental Science.
[18] Ana I. Caño-Delgado,et al. The physiology of plant responses to drought , 2020, Science.
[19] C. Knight,et al. Harnessing rhizosphere microbiomes for drought-resilient crop production , 2020, Science.
[20] R. Lal. Soil organic matter content and crop yield , 2020, Journal of Soil and Water Conservation.
[21] R. Solé,et al. Global ecosystem thresholds driven by aridity , 2020, Science.
[22] N. Pillai,et al. Combined influence of soil moisture and atmospheric evaporative demand is important for accurately predicting US maize yields , 2020, Nature Food.
[23] M. Bradford,et al. Direct evidence using a controlled greenhouse study for threshold effects of soil organic matter on crop growth. , 2020, Ecological applications : a publication of the Ecological Society of America.
[24] I. Kögel‐Knabner,et al. Organic matter input determines structure development and aggregate formation in artificial soils , 2019, Geoderma.
[25] Charlotte K. Williams,et al. The technological and economic prospects for CO2 utilization and removal , 2019, Nature.
[26] Jiang-bo Gao,et al. A synthesis of ecosystem aboveground productivity and its process variables under simulated drought stress , 2019, Journal of Ecology.
[27] Kaiyu Guan,et al. Excessive rainfall leads to maize yield loss of a comparable magnitude to extreme drought in the United States , 2019, Global change biology.
[28] Jia Li,et al. Variations in soil δ13C with alpine meadow degradation on the eastern Qinghai–Tibet Plateau , 2019, Geoderma.
[29] Yingnian Li,et al. Water and heat availability are drivers of the aboveground plant carbon accumulation rate in alpine grasslands on the Tibetan Plateau , 2019, Global Ecology and Biogeography.
[30] S. Adl,et al. Increased chemical stability but decreased physical protection of soil organic carbon in response to nutrient amendment in a Tibetan alpine meadow , 2018, Soil Biology and Biochemistry.
[31] Frédéric Baudron,et al. Soil organic matter underlies crop nutritional quality and productivity in smallholder agriculture , 2018, Agriculture, Ecosystems & Environment.
[32] P. Ciais,et al. Increased water-use efficiency and reduced CO2 uptake by plants during droughts at a continental scale , 2018, Nature Geoscience.
[33] M. Bradford,et al. Global meta-analysis of the relationship between soil organic matter and crop yields , 2018, SOIL.
[34] F. Maestre,et al. Aridity preferences alter the relative importance of abiotic and biotic drivers on plant species abundance in global drylands , 2018, Journal of Ecology.
[35] M. Bradford,et al. Direct effects of soil organic matter on productivity mirror those observed with organic amendments , 2018, Plant and Soil.
[36] P. Ciais,et al. Changes in nutrient concentrations of leaves and roots in response to global change factors , 2017, Global change biology.
[37] Atul K. Jain,et al. Global patterns of drought recovery , 2015, Nature.
[38] P. Blanken,et al. The increasing importance of atmospheric demand for ecosystem water and carbon fluxes , 2016 .
[39] S. Dong,et al. Effects of Waterlogging on Leaf Mesophyll Cell Ultrastructure and Photosynthetic Characteristics of Summer Maize , 2016, PloS one.
[40] N. Capelli,et al. Short-term response to waterlogging in Quercus petraea and Quercus robur: A study of the root hydraulic responses and the transcriptional pattern of aquaporins. , 2015, Plant physiology and biochemistry : PPB.
[41] L. Voesenek,et al. Flood adaptive traits and processes: an overview. , 2015, The New phytologist.
[42] Q. Han,et al. Soil aggregate and crop yield changes with different rates of straw incorporation in semiarid areas of northwest China , 2014 .
[43] Jian Sun,et al. Meta-analysis of relationships between environmental factors and aboveground biomass in the alpine grassland on the Tibetan Plateau , 2013 .
[44] C. Vaz,et al. Modeling and correction of soil penetration resistance for varying soil water content , 2011 .
[45] G. Pan,et al. The role of soil organic matter in maintaining the productivity and yield stability of cereals in China , 2009 .
[46] A. Maul,et al. A spectrophotometric measurement of soil cation exchange capacity based on cobaltihexamine chloride absorbance , 2008 .
[47] Johannes Lehmann,et al. Organic matter stabilization in soil microaggregates: implications from spatial heterogeneity of organic carbon contents and carbon forms , 2007 .
[48] R. Lal,et al. Soil structure and management: a review , 2005 .
[49] E. Czyż,et al. Effects of traffic on soil aeration, bulk density and growth of spring barley , 2004 .
[50] R. Lal,et al. Soil Carbon Sequestration Impacts on Global Climate Change and Food Security , 2004, Science.
[51] A. Calvo-Cases,et al. Influence of soil properties on the aggregation of some Mediterranean soils and the use of aggregate size and stability as land degradation indicators , 2001 .
[52] E. T. Elliott. Aggregate structure and carbon, nitrogen, and phosphorus in native and cultivated soils , 1986 .