[1] 丁永建, 周成虎, 邵明安,等. 地表过程研究进展与趋势[J]. 地球科学进展, 2013, 28(4): 407-419.
[2] JACINTHE P A, LAL R, KIMBLE J. Carbon Dioxide Evolution in Runoff from Simulated Rainfall on Long-term No-till and Plowed Soils in Southwestern Ohio[J]. Soil and Tillage Research, 2002, 66(1): 23-33.
[3] 朱永官, 李 刚, 张甘霖,等. 土壤安全: 从地球关键带到生态系统服务[J]. 地理学报, 2016, 70(12): 1859-1869.
[4] 刘纪根, 赵 健, 张平仓, 等. 基于 RS 和 GIS 的乌东德水电站坝址区土壤侵蚀预测研究[J]. 长江科学院院报, 2007, 24(4): 10-13.
[5] LAL R. Soil Erosion and Carbon Dynamics[J]. Soil and Tillage Research, 2005, 81(2): 137-142.
[6] REINERS W A. A Summary of the World Carbon Cycle and Recommendations for Critical Research[J]. Brookhaven Symposia in Biology, 1973,(30): 368.
[7] 方精云, 郭兆迪.寻找失去的陆地碳汇[J].自然杂志, 2007,29(1): 1-6.
[8] STALLARD R F. Terrestrial Sedimentation and the Carbon Cycle: Coupling Weathering and Erosion to Carbon Burial[J]. Global Biogeochemical Cycles, 1998, 12(2): 231-257.
[9] LAL R, PIMENTEL D. Soil Erosion: A Carbon Sink or Source? [J]. Science, 2008, 319(5866): 1040.
[10]DOETTERL S, BERHE A A, NADEU E, et al. Erosion, Deposition and Soil Carbon: A Review of Process-level Controls, Experimental Tools and Models to Address C Cycling in Dynamic Landscapes[J]. Earth-Science Reviews, 2016, 154: 102-122.
[11]LAL R. Soil Carbon Sequestration Impacts on Global Climate Change and Food Security[J]. Science, 2004, 304(5677): 1623.
[12]POLYAKOV V, LAL R. Soil Organic Matter and CO2 Emission as Affected by Water Erosion on Field Runoff Plots[J]. Geoderma, 2008, 143(1/2): 216-222.
[13]ANDERSON D W. Decomposition of Organic Matter and Carbon Emissions from Soils[M]. Boca Raton:CRC Lewis Publishers, 1995:165-175.
[14]PAPIERNIK S, LINDSTROM M, SCHUMACHER T, et al. Characterization of Soil Profiles in a Landscape Affected by Long-term Tillage[J]. Soil and Tillage Research, 2007, 93(2): 335-345.
[15]KIRKELS F, CAMMERAAT L H, KUHN N J. The Fate of Soil Organic Carbon upon Erosion, Transport and Deposition in Agricultural Landscapes—A Review of Different Concepts[J]. Geomorphology, 2014, 226: 94-105.
[16]RENWICK W, SMITH S, SLEEZER R, et al. Comment on “Managing Soil Carbon” (II)[J]. Science, 2004, 305(5690): 1567.
[17]WANG Z, GOVERS G, STEEGEN A,et al. Catchment-scale Carbon Redistribution and Delivery by Water Erosion in an Intensively Cultivated Area[J]. Geomorphology, 2010, 124(1): 65-74.
[18]LAL R. Global Soil Erosion by Water and Carbon Dynamics[J]. Soils and Global Change, 1995: 131-142.
[19]KIMBLE J M, Follett R F, Cole C V. The Potential of US Cropland to Sequester Carbon and Mitigate the Greenhouse Effect[M]. Boca Raton: CRC Press, 1998.
[20]MCCARTY G, RITCHIE J. Impact of Soil Movement on Carbon Sequestration in Agricultural Ecosystems[J]. Environmental Pollution, 2002, 116(3): 423-430.
[21]RITCHIE J C, MCCARTY G W. 137Cesium and Soil Carbon in a Small Agricultural Watershed[J]. Soil and Tillage Research, 2003, 69(1/2): 45-51.
[22]方海燕. 137Cs 和210 Pbex示踪黑土区坡耕地土壤侵蚀对有机碳的影响[J].应用生态学报, 2013, 24(7): 1856-1862.
[23]张 雪, 李忠武, 申卫平,等. 红壤有机碳流失特征及其与泥沙径流流失量的定量关系[J]. 土壤学报, 2012, 49(3): 465-473.
[24]潘根兴, 曹建华, 周运超. 土壤碳及其在地球表层系统碳循环中的意义[J]. 第四纪研究, 2000, 20(4): 325-334.
[25]贾松伟, 贺秀斌, 陈云明. 侵蚀逆境下土壤有机碳的迁移[J]. 生态环境, 2004,13(1): 78-80.
[26]GORDON H, HAYGARTH P M, BARDGETT R D. Drying and Rewetting Effects on Soil Microbial Community Composition and Nutrient Leaching[J]. Soil Biology and Biochemistry, 2008, 40(2): 302-311.
[27]RIMAL B K, LAL R. Soil and Carbon Losses from Five Different Land Management Areas under Simulated Rainfall[J]. Soil and Tillage Research, 2009, 106(1): 62-70.
[28]张 雪. 红壤丘陵区坡地侵蚀过程对土壤有机碳物理运移的影响规律研究[D]. 长沙:湖南大学, 2012:1-7,11.
[29]温丽燕, 王连峰. 侵蚀及土地利用管理方式改变对土壤有机碳的影响[J]. 中国农学通报, 2007, 23(7): 362-365.
[30]CAUSARANO H J, DORAISWAMY P C, MCCARTY G W, et al. EPIC Modeling of Soil Organic Carbon Sequestration in Croplands of Iowa[J]. Journal of Environmental Quality, 2008, 37(4): 1345-1353.
[31]袁颖红, 李辉信, 黄欠如,等. 不同施肥处理对红壤性水稻土微团聚体有机碳汇的影响[J]. 生态学报, 2004, 24(12): 2961-2966.
[32]于君宝, 刘景双, 刘淑霞,等. 不同开垦年限黑土耕层有机无机复合体变化及有机碳组分分布特征[J]. 农业系统科学与综合研究, 2004, 20(3): 224-228.
[33]LAL R. Soil Carbon Sequestration to Mitigate Climate Change[J]. Geoderma, 2004, 123(1/2): 1-22.
[34]聂小东, 李忠武, 王晓燕,等. 雨强对红壤坡耕地泥沙流失及有机碳富集的影响规律研究[J]. 土壤学报, 2013, 50(5): 900-908.
[35]MA W, LI Z, DING K, et al. Effect of Soil Erosion on Dissolved Organic Carbon Redistribution in Subtropical Red Soil under Rainfall Simulation[J]. Geomorphology, 2014, 226:217-225.
[36]王志强, 刘宝元, 王旭艳,等. 东北黑土区土壤侵蚀对土地生产力影响试验研究[J]. 中国科学: D 辑, 2009, (10): 1397-1412.
[37]杨艳生, 郑振源. 中国土壤侵蚀及生产力研究[M]. 南京:东南大学出版社, 1994: 13-15.
[38]SIX J F, THIET S, BATTEN R. Bacterial and Fungal Contributions to Carbon Sequestration in Agroecosystems[J]. Soil Science Society of America Journal, 2006, 70(2): 555.
[39]HUANG J, LI Z, NIE X, et al. Microbial Responses to Soil Rewetting in Erosional and Depositional Environments in Relation to the Organic Carbon Dynamics[J]. Geomorphology, 2014, 204(1): 256-264.
[40]余 健, 房 莉, 卞正富,等. 土壤碳库构成研究进展[J]. 生态学报, 2014, 34(17): 4829-4838.
[41]JACINTHE P, LAL R. A Mass Balance Approach to Assess Carbon Dioxide Evolution During Erosional Events[J]. Land Degradation & Development, 2001, 12(4): 329-339.
[42]VAN OOST K, QUINE T, GOVERS G, et al. The Impact of Agricultural Soil Erosion on the Global Carbon Cycle[J]. Science, 2007, 318(5850): 626.