Area of research
Soil Science · Plant Science
Research interest
Research interests include Environmental science, Environmental chemistry, Agronomy, Biomass (ecology), Ecosystem, and Biology.
Root traits and mycorrhizal fungi mediate reactive N and warming impacts on soil organic carbon
Soil pH and precipitation controls on organic carbon retention from organic amendments across soil orders: A meta-analysis
Variation in a single allele drives divergent yield responses to elevated CO2 between rice subspecies
Both biotic and abiotic soil N₂O productions are lower under organic N than inorganic N deposition in a Moso bamboo forest
Precipitation increase promotes soil organic carbon formation and stability via the mycorrhizal fungal pathway
Temporal dynamics of climate sensitivity of litter decomposition in a semi-arid grassland
Nutrient-induced acidification modulates soil biodiversity-function relationships
Intermediate soil acidification induces highest nitrous oxide emissions
Long-term organic amendments increase the vulnerability of microbial respiration to environmental changes: Evidence from field and laboratory studies
Resolving the Intricate Effects of Multiple Global Change Drivers on Root Litter Decomposition
Nitrogen availability mediates the effects of roots and mycorrhizal fungi on soil organic carbon decomposition: A meta-analysis
Precipitation- rather than temperature-driven pattern in belowground biomass and root:shoot ratio across the Qinghai-Tibet Plateau
Nitrogen availability mediates soil carbon cycling response to climate warming: A meta‐analysis
Moderate precipitation reduction enhances nitrogen cycling and soil nitrous oxide emissions in a semi‐arid grassland
Reduced phosphorus availability in paddy soils under atmospheric CO2 enrichment
Mycorrhizae enhance reactive minerals but reduce mineral‐associated carbon
Alterations in substrate stoichiometry control the responses of soil diazotrophs to nutrient enrichment
Interannual variation in precipitation predominantly controls mineral-associated organic carbon dynamics in a Tibetan alpine meadow
Climate warming suppresses abundant soil fungal taxa and reduces soil carbon efflux in a semi‐arid grassland
Nitrogen redistribution and seasonal trait fluctuation facilitate plant N conservation and ecosystem N retention
Alkalinity exacerbates phosphorus deficiency in subtropical red soils: Insights from phosphate‐solubilizing fungi
The grassland carbon cycle: Mechanisms, responses to global changes, and potential contribution to carbon neutrality
Association of Organic Carbon With Reactive Iron Oxides Driven by Soil pH at the Global Scale
Arbuscular Mycorrhizae Shift Community Composition of N-Cycling Microbes and Suppress Soil N<sub>2</sub>O Emission
Effects of nutrient heterogeneity on root foraging and plant growth at the individual and community level
Nitrogen addition and warming modulate the pathogen impact on plant biomass by shifting intraspecific functional traits and reducing species richness
Effects of an actinorhizal shrub on the nitrogen status of the soil and neighboring plants in an alpine meadow of the Tibetan Plateau
Climate warming promotes deterministic assembly of arbuscular mycorrhizal fungal communities
Plant nitrogen nutrition: The roles of arbuscular mycorrhizal fungi
Warming and elevated ozone induce tradeoffs between fine roots and mycorrhizal fungi and stimulate organic carbon decomposition