[1] 杨文稼, 肖庆红, 王仕稳, 等. 黄土高原旱作麦田深层土壤水利用与小麦产量及产量稳定性的关系. 干旱地区农业研究, 2023, 41(3): 41-48 [2] 李瑞雅, 孙敏, 任爱霞, 等. 耕作模式和播种方式对旱地小麦产量形成的影响. 干旱地区农业研究, 2022, 40(2): 17-26, 51 [3] 李春越, 常顺, 钟凡心, 等. 种植模式和施肥对黄土旱塬农田土壤团聚体及其碳分布的影响. 应用生态学报, 2021, 32(1): 191-200 [4] 王旭东, 庄俊杰, 刘冰洋, 等. 秸秆还田条件下中国农田土壤有机碳含量变化及其影响因素的Meta分析. 中国农业大学学报, 2020, 25(8): 12-24 [5] Goydaragh MG, Taghizadeh-Mehrjardi R, Jafarzadeh AA, et al. Using environmental variables and Fourier transform infrared spectroscopy to predict soil organic carbon. Catena, 2021, 202: 105280 [6] Pan JX, Miao Q, Zhang WJ, et al. Increasing soil organic carbon for higher wheat yield and nitrogen productivity. Agronomy, 2023, 13: 198 [7] Zhang WJ, Munkholm LJ, Liu X, et al. Soil aggregate microstructure and microbial community structure mediate soil organic carbon accumulation: Evidence from one-year field experiment. Geoderma, 2023, 430: 116324 [8] Zhou M, Xiao Y, Xiao LL, et al. Increased soil aggregate stability by altering contents and chemical composition of organic carbon fractions via seven years of manure addition in mollisols. Agriculture, 2022, 13: 88 [9] Yousra M, Hussain Q, Khan KS, et al. Soil organic carbon pools in benchmark soils of Punjab, Pakistan. Communications in Soil Science and Plant Analysis, 2023, 54: 571-585 [10] Zhang WS, Li H, Liang LY, et al. An integrated straw-tillage management increases maize crop productivity, soil organic carbon, and net ecosystem carbon budget. Agriculture, Ecosystems and Environment, 2022, 340: 108175 [11] Li GF, Li H, Yi XY, et al. Effects of fertilization regimes on soil organic carbon fractions and its mineralization in tea gardens. Agronomy, 2022, 12: 2522 [12] Ahogle AMA, Alladassi FK, Akplo TM, et al. Asses-sing soil organic carbon stocks and particle-size fractions across cropping systems in the Kiti sub-watershed in central Benin. Journal of Carbon Research, 2022, 8: 67 [13] Wang ZG, Zhang YZ, Govers G, et al. Temperature effect on erosion-induced disturbances to soil organic carbon cycling. Nature Climate Change, 2023, 13: 174-181 [14] 董丽, 史学正, 徐胜祥, 等. 基于Meta分析研究不同管理措施对中国农田土壤剖面有机碳的影响. 土壤, 2021, 53(6): 1290-1298 [15] 张存杰, 廖要明, 段居琦, 等. 我国干湿气候区划研究进展. 气候变化研究进展, 2016, 12(4): 261-267 [16] 马悦, 田怡, 牟文燕, 等. 北方麦区小麦产量与籽粒氮磷钾含量对监控施钾和土壤速效钾的响应. 中国农业科学, 2022, 55(16): 3155-3169 [17] 李玉梅. 我国葡萄主产区土壤养分数据库构建和土壤营养诊断标准研究. 硕士论文. 北京: 中国农业科学院, 2022 [18] 国家生态科学数据中心. 2001—2023年中国冬小麦30米分辨率种植分布数据集[EB/OL]. (2024-05-09) [2024-06-26]. https://cstr.cn/15732.11.nesdc.ecodb.12003990 [19] 高静, 徐明岗, 李然, 等. 整合分析生物炭施用对土壤pH的影响. 中国农业科技导报, 2023, 25(9): 186-196 [20] Li GR, Tang XQ, Hou QM, et al. Response of soil organic carbon fractions to legume incorporation into cropping system and the factors affecting it: A global meta-analysis. Agriculture, Ecosystems and Environment, 2023, 342: 108231 [21] 陆启帆, 林上平, 刘胜辉, 等. 施肥对毛竹林产量影响的Meta分析. 南京林业大学学报: 自然科学版, 2024, 48(1): 88-96 [22] Zhou ZH, Wang CK, Zheng MH, et al. Patterns and mechanisms of responses by soil microbial communities to nitrogen addition. Soil Biology and Biochemistry, 2017, 115: 433-441 [23] 蒋发辉, 钱泳其, 郭自春, 等. 基于Meta分析评价东北黑土地保护性耕作与深耕的区域适宜性: 以作物产量为例. 土壤学报, 2022, 59(4): 935-952 [24] Yao Y, Shen XL, Wang LL, et al. Effects of tillage management on cbbL-carrying bacteria and soil organic carbon dynamics across aggregate size classes in the farmland of North China Plain. Ecological Indicators, 2023, 150: 110213 [25] Zuber SM, Behnke GD, Nafziger ED, et al. Multivariate assessment of soil quality indicators for crop rotation and tillage in Illinois. Soil and Tillage Research, 2017, 174: 147-155 [26] 杜杰, 王林林, 谢军红, 等. 耕作措施对黄土高原地区农田土壤碳排放影响的Meta分析. 甘肃农业大学学报, 2020, 55(3): 45-53 [27] Liu WS, Wei YX, Deng PP, et al. Conservation tillage increases surface soil organic carbon stock by altering fungal communities and enzyme activity. Environmental Science and Pollution Research, 2023, 30: 80901-80915 [28] Zhu XF, Zhang CY, Hao YJ, et al. Effects of corn stover mulch quantity on mid-infrared spectroscopy of soil organic carbon in a no-tillage agricultural ecosystem. Journal of Applied Ecology, 2021, 32: 2685-2692 [29] Xu J, Han HF, Ning TY, et al. Long-term effects of tillage and straw management on soil organic carbon, crop yield, and yield stability in a wheat-maize system. Field Crops Research, 2019, 233: 33-40 [30] Martínez E, Fuentes JP, Pino V, et al. Chemical and biological properties as affected by no-tillage and conventional tillage systems in an irrigated Haploxeroll of Central Chile. Soil and Tillage Research, 2013, 126: 238-245 [31] Yan QY, Wu LJ, Dong F, et al. Subsoil tillage enhances wheat productivity, soil organic carbon and available nutrient status in dryland fields. Journal of Integrative Agriculture, 2024, 23: 251-266 [32] Yang JJ, Qin RZ, Shi XP, et al. The effects of plastic film mulching and straw mulching on licorice root yield and soil organic carbon content in a dryland farming. Science of the Total Environment, 2022, 826: 154113 [33] Govednik A, Potočnik , Eler K, et al. Combined effects of long-term tillage and fertilisation regimes on soil organic carbon, microbial biomass, and abundance of the total microbial communities and N-functional guilds. Applied Soil Ecology, 2023, 188: 104876 [34] Li Y, Abalos D, Arthur E, et al. Different straw return methods have divergent effects on winter wheat yield, yield stability, and soil structural properties. Soil and Tillage Research, 2024, 238: 105992 [35] Ogle SM, Alsaker C, Baldock J, et al. Climate and soil characteristics determine where no-till management can store carbon in soils and mitigate greenhouse gas emissions. Scientific Reports, 2019, 9: 11665 [36] Krauss M, Wiesmeier M, Don A, et al. Reduced tillage in organic farming affects soil organic carbon stocks in temperate Europe. Soil and Tillage Research, 2022, 216: 105262 [37] Wiesmeier M, Urbanski L, Hobley E, et al. Soil organic carbon storage as a key function of soils: A review of drivers and indicators at various scales. Geoderma, 2019, 333: 149-162 [38] Marin-Sanleandro P, Gómez-Garcia AM, Blanco-Bernardeau A, et al. Influence of the type and use of soil on the distribution of organic carbon and other soil properties in a sustainable and resilient agropolitan system. Forests, 2023, 14: 1085 [39] 李春亮, 王翔, 张炜, 等. 黄土高原西段表层土壤有机碳储量及时空变化规律. 现代地质, 2022, 36(2): 655-661 [40] Ahmad N, Virk AL, Hafeez MB, et al. Effects of different tillage and residue management systems on soil organic carbon stock and grain yield of rice-wheat double cropping system. Ecological Indicators, 2024, 158: 111452 [41] Liu ST, Xie XS, Wang XC, et al. Distribution characteristics and prediction model of farmland soil organic carbon in eastern China. Environmental Research Communications, 2022, 4: 055012 [42] Islam UM, Jiang FH, Guo ZC, et al. Impacts of straw return coupled with tillage practices on soil organic carbon stock in upland wheat and maize croplands in China: A meta-analysis. Soil and Tillage Research, 2023, 232: 105786 [43] 庞晔, 袁建钰, 闫丽娟, 等. 保护性耕作对黄土高原旱作麦田土壤氮矿化的影响. 干旱区研究, 2023, 40(9): 1446-1456 [44] 吕付泽, 杨雅丽, 鲍雪莲, 等. 免耕不同秸秆覆盖量对黑土微生物群落及其残留物的影响. 应用生态学报, 2023, 34(4): 903-912 [45] Gao XS, Huang R, Li J, et al. Temperature induces soil organic carbon mineralization in urban park green spaces, Chengdu, southwestern China: Effects of plan-ting years and vegetation types. Urban Forestry and Urban Greening, 2020, 54: 126761 [46] Cai AD, Xu H, Duan YH, et al. Changes in mineral-associated carbon and nitrogen by long-term fertilization and sequestration potential with various cropping across China dry croplands. Soil and Tillage Research, 2021, 205: 104725 [47] Zhao YC, Wang MY, Hu SJ, et al. Economics- and policy-driven organic carbon input enhancement dominates soil organic carbon accumulation in Chinese croplands. Proceedings of the National Academy of Sciences of the United States of America, 2018, 115: 4045-4050 [48] 张迎春, 王萍, 刘亚龙, 等. 长期种植作物对中国农田土壤有机碳影响的Meta分析. 土壤学报, 2024, 61, DOI: 10. 11766/trxb202308230339 [49] Wang KB, Deng L, Di DR, et al. Tracking soil carbon processes in two temperate forests at different successional stages using stable and radioactive carbon isotopes. Agriculture, Ecosystems and Environment, 2020, 304: 107143 [50] 刘红梅, 海香, 安克锐, 等. 不同施肥措施对华北潮土区玉米田土壤固碳细菌群落结构多样性的影响. 生态环境学报, 2022, 31(4): 715-722 [51] Ngaba MJY, Uwiragiye Y, Zhou JB. Patterns and controlling factors of soil carbon sequestration in nitrogen-limited and -rich forests in China: A meta-analysis. PeerJ, 2023, 11: 14694 [52] Zhang H, Wang DF, Su BW, et al. Distribution and determinants of organic carbon and available nutrients in tropical paddy soils revealed by high-resolution sampling. Agriculture, Ecosystems and Environment, 2021, 320: 107580 [53] Liu YH, Li C, Cai G, et al. Meta-analysis on the effects of types and levels of N, P, and K fertilization on orga-nic carbon in cropland soils. Geoderma, 2023, 437: 116580 [54] 李健明, 康雨欣, 蒋福祯, 等. 基于Meta分析的煤矿区植被恢复对土壤有机碳储量的影响. 环境科学, 2024, 45(3): 1629-1643 [55] Luo XZ, Zhang LL, Lin YB, et al. Nitrogen availability mediates soil organic carbon cycling in response to phosphorus supply: A global meta-analysis. Soil Biology and Biochemistry, 2023, 185: 109158 [56] Wang D, Wu BS, Li F, et al. Soil organic carbon stock in China’s tea plantations and their great potential of carbon sequestration. Journal of Cleaner Production, 2023, 421: 138485 [57] Wang M, Zheng QS, Shen QR, et al. The critical role of potassium in plant stress response. International Journal of Molecular Sciences, 2013, 14: 7370-7390 [58] Qiu KY, Xie YZ, Xu DM, et al. Ecosystem functions including soil organic carbon, total nitrogen and available potassium are crucial for vegetation recovery. Scientific Reports, 2018, 8: 7607 |