[1]周 咪,肖海兵,聂小东,等.近30年国内外土壤有机碳研究进程解析与展望[J].水土保持研究,2020,27(03):391-400.
 ZHOU Mi,XIAO Haibing,NIE Xiaodong,et al.Analysis and Prospect of Soil Organic Carbon Research Process in Recent 30 Years at Home and Abroad[J].Research of Soil and Water Conservation,2020,27(03):391-400.
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近30年国内外土壤有机碳研究进程解析与展望

参考文献/References:

[1] Batjes N H. Total carbon and nitrogen in the soils of the world[J]. European Journal of Soil Science, 1996,47(2):151-163.
[2] 刘满强,胡锋,陈小云.土壤有机碳稳定机制研究进展[J].生态学报,2007,27(6):2642-2650.
[3] Wilding L P, Lin H. Advancing the frontiers of soil science towards a geoscience[J]. Geoderma, 2006,131(3/4):257-274.
[4] 陈超美,陈悦,侯剑华,等. CitespaceⅡ:科学文献中新趋势与新动态的识别与可视化[J].情报学报,2009,28(3):401-421.
[5] 谭清月,许明祥,李彬彬,等.中国生态系统服务研究发展过程解析[J].水土保持研究,2018,25(4):330-337.
[6] Schimel D S, Braswell B H, Holland E A, et al. Climatic, edaphic, and biotic controls over storage and turnover of carbon in soils[J]. Global Biogeochemical Cycles, 1994,8(3):279-293.
[7] Coleman K, Jenkinson D S. RothC-26.3-A Model for the turnover of carbon in soil[M]∥Evaluation of soil organic matter models, Springer, Berlin, Heidelberg, 1996.
[8] Kelly R H, Parton W J, Crocker G J, et al. Simulating trends in soil organic carbon in long-term experiments using the century model[J]. Geoderma, 1997,81(1/2):75-90.
[9] Studdert G A. Crop rotations and nitrogen fertilization to manage soil organic carbon dynamics[J]. Soil Science Society of America Journal, 2000,64(4):1496-1503.
[10] Moraes J L, Cerri C C, Melillo J M, et al. Soil carbon stocks of the Brazilian Amazon basin[J]. Soil Science Society of America Journal, 1995,59(1):244-247.
[11] Rapalee G, Trumbore S E, Davidson E A, et al. Soil carbon stocks and their rates of accumulation and loss in a boreal forest landscape[J]. Global Biogeochemical Cycles, 1998,12(4):687-701.
[12] Taylor L A, Arthur M A, Yanai R D. Forest floor microbial biomass across a northern hardwood successional sequence[J]. Soil Biology and Biochemistry, 1999,31(3):431-439.
[13] Sparling G P. Ratio of microbial biomass carbon to soil organic carbon as a sensitive indicator of changes in soil organic matter[J]. Soil Research, 1992,30(2):195-207.
[14] Franzluebbers A J, Hons F M, Zuberer D A. Soil organic carbon, microbial biomass, and mineralizable carbon and nitrogen in sorghum[J]. Soil Science Society of America Journal, 1995,59(2):460-466.
[15] Alvarez R, Diaz R A, Barbero N, et al. Soil organic carbon, microbial biomass and CO2-C production from three tillage systems[J]. Soil and Tillage Research, 1995,33(1):17-28.
[16] TurnerⅡB L, D Skole, G Fisher, et al. Land use and land coverchange:science/research plan[Z]. Stockholm and Geneva:IGBP Repoa No.35 and HDP Repoa No.7,1995.
[17] Richter D D, Markewitz D, Trumbore S E, et al. Rapid accumulation and turnover of soil carbon in a re-establishing forest[J]. Nature, 1999,400(6739):56-58.
[18] Richard T. Conant. Grassland management and conversion into grassland:effects on soil carbon[J]. Ecological Applications, 2001,11(2):343-355.
[19] Don A, Schumacher J, Freibauer A. Impact of tropical land use change on soil organic carbon stocks-a meta analysis[J]. Global Change Biology, 2011,17(4):1658-1670.
[20] John B, Yamashita T, Ludwig B, et al. Storage of organic carbon in aggregate and density fractions of silty soils under different types of land use[J]. Geoderma, 2005,128(1/2):63-79.
[21] Zhou X Y, Zhang C Y, Guo G F. Effects of climate change on forest soil organic carbon storage:a review[J]. the Journal of Applied Ecology, 2010,21(7):1867-1874.
[22] Knorr W, Prentice I, House J, et al. Long-term sensitivity of soil carbon turnover to warming[J]. Nature, 2005,433(7023):298-301.
[23] 崔利论,袁文平,张海成.土壤侵蚀对陆地生态系统碳源汇的影响[J].北京师范大学学报:自然科学版,2016,52(6):816-822.
[24] Lal R, Pimentel D. Soil erosion:a carbon sink or source[J]. Science, 2008,319(5866):1040-1042.
[25] minasny B, Malone B P, McBratney A B, et al. Soil carbon 4 per mille[J]. Geoderma, 2017,292:59-86..
[26] 程琨,潘根兴.“千分之四全球土壤增碳计划”对中国的挑战与应对策略[J].气候变化研究进展,2016,12(5):457-464.
[27] Hamdi S, Moyano F, Sall S, et al. Synthesis analysis of the temperature sensitivity of soil respiration from laboratory studies in relation to incubation methods and soil conditions[J]. Soil Biology and Biochemistry, 2013,58:115-126.
[28] Aitkenhead M J, Coull M C. Mapping soil carbon stocks across Scotland using a neural network model[J]. Geoderma, 2016,262:187-198.
[29] Guo L, Zhang H, Shi T, et al. Prediction of soil organic carbon stock by laboratory spectral data and airborne hyperspectral images[J]. Geoderma, 2019,337:32-41.
[30] Crowther T W, Todd-Brown K E, Rowe C W, et al. Quantifying global soil carbon losses in response to warming[J]. Nature, 2016,540(7631):104-108.
[31] Deng L, Zhu G, Tang Z, et al. Global patterns of the effects of land-use changes on soil carbon stocks[J]. Global Ecology and Conservation, 2016,5:127-138..
[32] 李杰. Citespace:科技文本挖掘及可视化[M].北京:首都经济贸易大学出版社,2016.
[33] Liu B, Banks M K, Schwab P. Effects of soil water content on biodegradation of phenanthrene in a mixture of organic contaminants[J]. Soil and Sediment Contamination, 2001,10(6):633-658.
[34] Ke Sun, Bo Gao, Guixiang Zhang, et al. Sorption of atrazine and phenanthrene by organic matter fractions in soil and sediment[J]. Environmental Pollution, 2010,158(12):3520-3526.
[35] Hernandez-Soriano M C, KerréB, Kopittke P M, et al. Biochar affects carbon composition and stability in soil:a combined spectroscopy-microscopy study[J]. Scientific Reports, 2016,6(25127):1-13.
[36] Zhang S, Wang L, Wei W, et al. Enhanced roles of biochar and organic fertilizer in microalgae for soil carbon sink[J]. Biodegradation, 2018,29(4):313-321.
[37] Hinge G, Surampalli R Y, Goyal M K. Prediction of soil organic carbon stock using digital mapping approach in humid India[J]. Environmental Earth Sciences, 2018,77(5):160-173.
[38] Sahu S C, Kumar M, Ravindranath N H. Carbon stocks in natural and planted mangrove forests of Mahanadi Mangrove Wetland, East Coast of India[J]. Current Science, 2016,110(12):2253-2260.
[39] Akpa S I C, Odeh I O A, Bishop T F A, et al. Total soil organic carbon and carbon sequestration potential in Nigeria[J]. Geoderma, 2016,271:202-215.
[40] 安战士.土壤有机碳的水合热测定法[J].土壤通报,1981(2):14.
[41] 祖守先,张友金,张福星,等.浙江省两年五熟制t粮田的碳素平衡研究[J].土壤通报,1995,26(7):18-20.
[42] 马成泽,周勤.不同肥料配合施用土壤有机碳盈亏分布[J].土壤学报,1994,31(1):34-41..
[43] 金峰,杨浩,赵其国.土壤有机碳储量及影响因素研究进展[J].土壤,2000,32(1):11-17.
[44] 赵荣钦,秦明周.中国沿海地区农田生态系统部分碳源/汇时空差异[J].生态与农村环境学报,2007,23(2):1-6.
[45] 李凌浩,刘先华.内蒙古锡林河流域羊草草原生态系统碳素循环研究[J].植物学报:英文版,1998,40(10):955-961.
[46] 颉鹏,蔺海明,黄高宝,等.河西绿洲农田生态系统碳源/汇的时空差异研究[J].草业学报,2009,18(4):224-229.
[47] 周成虎,周启鸣,王绍强,等.中国土壤有机碳库空间分布的分析与估算[J]. AMBIO-人类环境杂志,2003,32(1):6-12,82.
[48] 孙维侠,史学正,于东升,等.基于1:100万土壤空间数据库的有机碳储量估算研究:以中国东北三省为例[J].地理科学,2004,24(5):568-572.
[49] 曾永年,冯兆东,曹广超,等.黄河源区高寒草地土壤有机碳储量及分布特征[J].地理学报,2004,59(4):497-504.
[50] 刘景双,孙丽娜.温度、水分对湿地土壤有机碳矿化的影响[J].生态学杂志,2008,27(1):38-42.
[51] 李忠佩,车玉萍,张朝.土地利用方式转变后灰色森林土有机碳矿化的温度响应特征[J].应用生态学报,2009,20(5):1020-1025.
[52] Cambou A, Cardinael R, Kouakoua E, et al. Prediction of soil organic carbon stock using visible and near infrared reflectance spectroscopy(VNIRS)in the field[J]. Geoderma, 2016,261:151-159.
[53] 苗正红,杨清臣,邱中军,等.基于GIS技术的土地利用变化对表层土壤有机碳储量的影响:以富锦市为例[J].水土保持研究,2015,22(6):19-23.
[54] 董扬红,曾全超,李娅芸,等.黄土高原不同植被类型土壤活性有机碳组分分布特征[J].草地学报,2015,23(2):277-284.
[55] 丁咸庆,马慧静,朱晓龙,等.大围山不同海拔森林土壤有机碳垂直分布特征[J].水土保持学报,2015,29(2):258-262.
[56] 赵鑫,宇万太,李建东,等.不同经营管理条件下土壤有机碳及其组分研究进展[J].应用生态学报,2006,17(11):2203-2209.
[57] 李洁静,潘根兴,李恋卿,等.红壤丘陵双季稻稻田农田生态系统不同施肥下碳汇效应及收益评估[J].农业环境科学学报,2009,28(12):2520-2525.
[58] 刘晶晶,张阿凤,冯浩,等.不同灌溉量对小麦—玉米轮作农田生态系统净碳汇的影响[J].应用生态学报,2017,28(1):169-179.
[59] 姜蓝齐,臧淑英,张丽娟,等.松嫩平原农田土壤有机碳变化及固碳潜力估算[J].生态学报,2017,37(21):7068-7081.
[60] 宋长青,谭文峰.基于文献计量分析的近30年国内外土壤科学发展过程解析[J].土壤学报,2015,52(5):957-969.
[61] 王岩松,李梦迪,朱连奇.土壤有机碳库及其影响因素的研究进展[J].中国农学通报,2015,31(32):123-131.
[62] 张洪培,李秀云,沈玉芳,等.生物质炭对农田土壤有机碳及其矿化影响的研究进展[J].西北农业学报,2018,27(4):459-468.

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备注/Memo

收稿日期:2019-06-27 修回日期:2019-07-30资助项目:国家重点研发计划“红壤低山丘陵区水土流失演变规律与驱动机制”(2017YFC0505401)第一作者:周咪(1995—),女,安徽灵璧人,硕士研究生,主要从事土壤侵蚀与碳循环关系研究。E-mail:zhoumi_hunnu@163.com通信作者:李忠武(1972—),男,湖南望城人,博士,教授,主要从事土壤侵蚀与碳循环关系研究。E-mail:lzw17002@hunnu.edu.cn

更新日期/Last Update: 2020-04-30