Junzhuo Liu, Lina Gong, Oene Oenema, Yonghong Wu
Sustainable residue management underpins agricultural productivity and climate resilience. Direct straw return (DSR) is widely adopted to enhance soil organic carbon (SOC) and fertility, yet its long-term sustainability remains uncertain due to trade-offs between C sequestration and greenhouse gas (GHG) emissions. By synthesizing 375 studies across China, we evaluate DSR's long-term impacts on SOC, crop yield, and net carbon benefits (NCB) and propose an integrated strategy (DSR-C) combining optimized tillage, nitrogen reduction, and microbial inoculation. Model-simulated dynamics show that SOC accumulation and yield gains plateau over time, whereas the national-scale NCB eventually turns negative due to persistent GHG emissions. Pareto optimization reveals an optimal trade-off threshold (Knee point) at 1.4-5.5 years across regions. Significant regional heterogeneity governs these dynamics: upland wheat/maize systems sustain positive NCB for 6.4 to over 50 years, whereas rice-dominated regions require temporal limits (1.6-3.5 years) to prevent transitioning from a net carbon sink to a net carbon source. Beyond these critical windows, yield increments stagnate while ecological trade-offs intensify. By highlighting the dynamic, transient nature of agricultural carbon sinks, these findings provide a quantitative blueprint for region-specific adaptive residue management, offering broad global relevance for scaling climate-smart agriculture and accelerating decarbonization under future global change.