[1] CHENG Y, WANG J, CHANG S X, et al. Nitrogen deposition affects both net and gross soil nitrogen transformations in forest ecosystems: A review[J]. Environmental Pollution, 2019, 244: 608-616.
[2] WEN Y, TANG Y, WEN J , et al. Variation of intra‐aggregate organic carbon affects aggregate formation and stability during organic manure fertilization in a fluvo‐aquic soil[J]. Soil Use and Management, 2020, 37(1): 151-163.
[3] 陈 天, 程瑞梅, 王丽君, 等. 氮添加对马尾松人工林土壤团聚体氮矿化及土壤酶活性的影响[J]. 生态学报, 2023, 43(16):6528-6538.
[4] BUCKA F B, KÖLBL A, UTEAU D, et al. Organic matter input determines structure development and aggregate formation in artificial soils[J]. Geoderma, 2019, 354: 113881.
[5] XIAO R, DUAN B, MAN X, et al. Highly sensitive net nitrogen mineralization to soil temperature and moisture during a boreal secondary forest succession[J]. Journal of Soils and Sediments, 2023, 23(3): 1169-1181.
[6] PAJUSTE K, FREY J. Nitrogen mineralization in podzol soils under boreal Scots pine and Norway spruce stands[J]. Plant and Soil, 2003, 257(1): 237-247. doi: 10.1023/A:1026222831694
[7] BAI E, LI S, XU W, et al. A meta-analysis of experimental warming effects on terrestrial nitrogen pools and dynamics[J]. New Phytologist, 2013, 199(22): 441-451. doi: 10.1111/nph.12252
[8] 徐星凯, 韩 琳, 罗献宝. 模拟氮沉降对温带阔叶红松林地氮素净矿化量的影响[J]. 气候与环境研究, 2012, 17(5):628-638.
[9] 周于波, 王景燕, 黄 帅, 等. 水热条件对华西雨屏区檫木人工林土壤氮矿化的影响[J]. 云南农业大学学报(自然科学), 2019, 34(3):479-485.
[10] 王 鸽, 贾志军, 韩 琳. 全球森林土壤净矿化量的影响因子[J]. 环境科学与技术, 2014, 37(120):9-14.
[11] STANFORD G, EPSTEIN E. Nitrogen mineralization-water relations in soils[J]. Soil Science Society of America Proceedings, 1974, 38(1): 103-107.
[12] KNOEPP J D, SWANK W T. Using soil temperature and moisture to predict forest soil nitrogen mineralization[J]. Biology and Fertility of Soils, 2002, 36(3): 177-182.
[13] GUNTIÑAS M E, LEIRÓS M C, TRASAR-CEPEDA C, et al. Effects of moisture and temperature on net soil nitrogen mineralization: A laboratory study[J]. European Journal of Soil Biology, 2012, 48(1): 73-80.
[14] KNOEPP J D, VOSE J M. Regulation of nitrogen mineralization and nitrification in southern Appalachian ecosystems: separating the relative importance of biotic vs. abiotic controls[J]. Pedobiologic, 2007, 51(2): 89-97. doi: 10.1016/j.pedobi.2007.02.002
[15] 朱建华, 田 宇, 李 奇, 等. 中国森林生态系统碳汇现状与潜力[J]. 生态学报, 2023, 43(9):3442-3457.
[16] 中国气象局气候变化中心. 中国气候变化蓝皮书(2022)[R]. 北京: 中国气象局. 2022.
[17] 程书波, 李 冲, 岳 颖, 等. 1961—2020年我国中部地区气温和降水时空变化特征[J]. 水利水电技术(中英文), 2023, 54(6):75-86.
[18] 王丽君, 程瑞梅, 肖文发, 等. 氮添加对三峡库区马尾松-栓皮栎混交林土壤微生物生物量和酶活性的影响[J]. 应用生态学, 2022, 33(1):42-50.
[19] BACH E M, HOFMOCKEL K S. Soil aggregate isolation method affects measures of intra-aggregate extracellular enzyme activity[J]. Soil Biology and Biochemistry, 2014, 69(1): 54-62.
[20] 陈 天, 程瑞梅, 沈雅飞, 等. 氮添加对三峡库区马尾松人工林土壤团聚体有机氮组分和氮矿化的影响[J]. 应用生态学报, 2023, 34(10):2601-2609.
[21] CAO R, CHEN L C, HOU X C, et al. Nitrogen addition reduced carbon mineralization of aggregates in forest soils but enhanced in paddy soils in South China[J]. Ecol Processes, 2021, 10(1): 1-11.
[22] 刘君政, 王 鹏, 肖汉玉, 等. 中国陆地生态系统土壤氮矿化速率和硝化速率及影响因素——基于文献数据的统计分析[J]. 生态学报, 2020, 40(12):12.
[23] POLLÁKOVÁ N, ŠIMANSKÝ V V, KRAVKA M. The influence of soil organic matter fractions on aggregates stabilization in agricultural and forest soils of selected Slovak and Czech hilly lands[J]. Journal of Soils and Sediments, 2017, 18(8): 2790-2800.
[24] 凌小莉, 史宝库, 崔海莹, 等. 氮磷添加对松嫩草地土壤团聚体结构及其碳含量的影响[J]. 中国草地学报, 2021, 43(2):54-63.
[25] 杨 坤, 陈佳广, 关连珠, 等. 不同利用方式下棕壤及其各级微团聚体中微生物量碳、氮的变化[J]. 中国农学通报, 2006(1):185-187.
[26] GUNTIÑAS M E, LEIRÓS M C, TRASAR-CEPEDA C, et al. Effects of moisture and temperature on net soil nitrogen mineralization: A laboratory study[J]. European Journal of Soil Biology, 2012, 48(3): 73-80.
[27] CHEN T, CHENG R M, XIAO W F, et al. Nitrogen addition enhances soil nitrogen mineralization through an increase in mineralizable organic nitrogen and the abundance of functional genes[J]. Journal of Soil Science Plant nutrition, 2024, https://doi.org/10.1007/s42729-023-01600-0.
[28] MARKLEIN A R, WINBOURNE J B, ENDERS S K, et al. Mineralization ratios of nitrogen and phosphorus from decomposing litter in temperate versus tropical forests[J]. Global Ecology and Biogeography, 2016, 25(3): 335-346.
[29] LI Y, LIU Y H, WANG Y L, et al. Interactive effects of soil temperature and moisture on soil N mineralization in a Stipa krylovii grassland in Inner Mongolia, China[J]. Journal of Arid Land, 2014, 6(5): 571-580. doi: 10.1007/s40333-014-0025-5
[30] FUJITA Y, van BODEGOM P M, VENTERINK H O, et al. Towards a proper integration of hydrology in predicting soil nitrogen mineralization rates along natural moisture gradients[J]. Soil Biology and Biochemistry, 2013, 58: 302-312.
[31] 朱寒松. 土壤和团聚体氮素矿化对水热条件的响应特征研究[D]. 杨凌, 西北农林科技大学, 2018.
[32] GAO J Q, OUYANG H, ZHANG F, et al. The response of soil nitrogen mineralization to soil temperature and soil moisture in Zoige alpine wetland[J]. Wetland Science, 2008, 6(2): 229-234.
[33] WANG C, WAN S, XING X, et al. Temperature and soil moisture interactively affected soil net N mineralization in temperate grassland in Northern China[J]. Soil Biology Biochemistry, 2006, 38(5): 1101-1110.
[34] WANG C, WAN S, XING X, et al. Temperature and soil moisture interactively affected soil net N mineralization in temperate grassland in Northern China[J]. Soil Biology & Biochemistry, 2006, 38(5): 1101-1110.
[35] 马 芬, 马红亮, 邱 泓, 等. 水分状况与不同形态氮添加对亚热带森林土壤氮素净转化速率及N2O排放的影响[J]. 应用生态学报, 2015, 26(2):379-387.
[36] 石 薇, 王景燕, 魏有波, 等. 水热条件对华西雨屏区柳杉人工林土壤氮矿化的影响[J]. 土壤通报, 2014, 45(6):1430-1436.
[37] 桂慧颖, 李雪江, 王景燕, 等. 温度和水分对华西雨屏区毛竹林土壤氮矿化的影响[J]. 四川农业大学学报, 2018, 36(6):758-764.
[38] 魏丽云. 土壤水分动态对氮素净矿化的影响[D]. 杨凌, 西北农林科技大学, 2019.
[39] 刘杏认, 董云社, 齐玉春, 等. 温带典型草地土壤净氮矿化作用研究[J]. 环境科学, 2007, 28(3):633-639.
[40] LIU Y, TAN X P, Wang Y Y, et al. Responses of litter, organic and mineral soil enzyme kinetics to 6 years of canopy and understory nitrogen additions in a temperate forest[J]. Science of The Total Environment, 2020, 712: 136383.
[41] 赵 宁, 张洪轩, 王若梦, 等. 放牧对若尔盖高寒草甸土壤氮矿化及其温度敏感性的影响[J]. 生态学报, 2014, 34(15):4234-4241.
[42] ZANG H D, BLAGODATSKAYA E, WEN Y, et al. Temperature sensitivity of soil organic matter mineralization decreases with long-term N fertilization: Evidence from four Q 10 estimation approaches[J]. Land Degradation & Development, 2020, 31(6): 683-693.
[43] IPCC. Climate change 2021: The physical science basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change[M]. Cambridge and New York: Cambridge University Press (In Press), 2021.