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Browsing by Author "Zhou, Ping"

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Now showing 1 - 4 of 4
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    Carbon allocation and fate in paddy soil depending on phosphorus fertilization and water management: results of 13 C continuous labelling of rice
    (2018)
    Atere, Cornelius Talade
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    Ge, Tida
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    Zhu, Zhenke
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    Wei, Liang
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    Zhou, Ping
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    He, Xinhua
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    Kuzyakov, Yakov  
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    Wu, Jinshui
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    Lupwayi, Newton
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    Intensive fertilization (N, P, K, Ca, and S) decreases organic matter decomposition in paddy soil
    (2018)
    Liu, Yuhuai
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    Zang, Huadong
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    Ge, Tida
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    Bai, Jing
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    Lu, Shunbao
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    Zhou, Ping
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    Peng, Peiqing
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    Shibistova, Olga
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    Zhu, Zhenke
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    Wu, Jinshui
    ;
    Guggenberger, Georg
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    Loss of labile organic carbon from subsoil due to land-use changes in subtropical China
    (Pergamon-elsevier Science Ltd, 2015)
    Sheng, Hao
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    Zhou, Ping
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    Zhang, Y.
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    Kuzyakov, Yakov  
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    Zhou, Q.
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    Ge, Tida
    ;
    Wang, C.
    Topsoil carbon (C) stocks are known to decrease as a consequence of the conversion of natural ecosystems to plantations or croplands; however, the effect of land use change on subsoil C remains unknown. Here, we hypothesized that the effect of land use change on labile subsoil organic C may be even stronger than for topsoil due to upward concentration of plantations and crops root systems. We evaluated soil labile organic C fractions, including particulate organic carbon (POC) and its components [coarse POC and fine POC], light fraction organic carbon (LFOC), readily oxidizable organic carbon, dissolved organic carbon (DOC) and microbial biomass down to 100 cm soil depth from four typical land use systems in subtropical China. Decrease in fine root biomass was more pronounced below 20 cm than in the overlying topsoil (70% vs. 56% for plantation and 62% vs. 37% for orchard. respectively) driving a reduction in subsoil labile organic C stocks. Land use changes from natural forest to Chinese fir plantation, Chinese chestnut orchard, or sloping tillage reduced soil organic C stocks and that of its labile fractions both in top and subsoil (20-100 cm). POC reduction was mainly driven by a decrease in fine POC in topsoil, while DOC was mainly reduced in subsoil. Fine POC, LFOC and microbial biomass can be useful early indicators of changes in topsoil organic C. In contrast, LFOC and DOC are useful indicators for subsoil. Reduced proportions of fine POC, LFOC, DOC and microbial biomass to soil organic C reflected the decline in soil organic C quality caused by land use changes. We conclude that land use changes decrease C sequestration both in topsoil and subsoil, which is initially indicated by the labile soil organic C fractions. (C) 2015 Elsevier Ltd. All rights reserved.
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    Microorganisms maintain C:N stoichiometric balance by regulating the priming effect in long-term fertilized soils
    (2021)
    Zhu, Zhenke
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    Zhou, Juan
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    Shahbaz, Muhammad  
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    Tang, Haiming
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    Liu, Shoulong
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    Zhang, Wenju
    ;
    Yuan, Hongzhao
    ;
    Zhou, Ping
    ;
    Alharbi, Hattan
    ;
    Wu, Jinshui
    ;
    Ge, Tida

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