[1]王健,吴义强,李贤军,等. 稻/麦秸秆资源化利用研究现状[J]. 林产工业,2021,58(1):1-5.
[2]张晓萱,秦耀辰,吴乐英,等. 农业温室气体排放研究进展[J]. 河南大学学报(自然科学版),2019,49(6):649-662,713.
[3]赵明月,刘源鑫,张雪艳. 农田生态系统碳汇研究进展[J]. 生态学报,2022,42(23):9405-9416.
[4]姜玥珊,李衍素,王娟娟,等. 我国秸秆还田技术发展现状[J]. 中国蔬菜,2021(11):27-32.
[5]Shi W J,Fang Y R,Chang Y Y,et al. Toward sustainable utilization of crop straw:greenhouse gas emissions and their reduction potential from 1950 to 2021 in China[J]. Resources,Conservation and Recycling,2023,190:106824.
[6]Masson V,Zhai P,Pirant A,et al. Climate change 2021:the physical science basis[J]. Chemistry International,2021,43(4):22-23.
[7]李成芳,寇志奎,张枝盛,等. 秸秆还田对免耕稻田温室气体排放及土壤有机碳固定的影响[J]. 农业环境科学学报,2011,30(11):2362-2367.
[8]江瑜,朱相成,钱浩宇,等. 水稻丰产与稻田甲烷减排协同的研究展望[J]. 南京农业大学学报,2022,45(5):839-847.
[9]Li F Y,Cao X D,Zhao L,et al. Short-term effects of raw rice straw and its derived biochar on greenhouse gas emission in five typical soils in China [J]. Soil Science and Plant Nutrition,2013,59(5):800-811.
[10]Liu Y,Wang K K,Liao S P,et al. Differences in responses of ammonia volatilization and greenhouse gas emissions to straw return and paddy upland rotations[J]. Environmental Science and Pollution Research,2022,29(17):25296-25307.
[11]Hu N J,Wang B J,Gu Z H,et al. Effects of different straw returning modes on greenhouse gas emissions and crop yields in a rice-wheat rotation system[J]. Agriculture,Ecosystems & Environment,2016,223:115-122.
[12]曾文静,邱岚英,陈俊杰,等. 秸秆还田下大气CO2浓度升高对水稻生长和CH4排放的影响[J]. 中国水稻科学,2022,36(5):543-550.
[13]张坚超,徐镱钦,陆雅海. 陆地生态系统甲烷产生和氧化过程的微生物机理[J]. 生态学报,2015,35(20):6592-6603.
[14]Liu J L,Huang X Y,Jiang H B,et al. Sustaining yield and mitigating methane emissions from rice production with plastic film mulching technique[J]. Agricultural Water Management,2021,245:106667.
[15]杨世梅,何腾兵,杨丽,等. 秸秆与生物炭覆盖对土壤养分及温室气体排放的影响[J]. 湖南农业大学学报(自然科学版),2022,48(1):75-81.
[16]张杏雨,李思宇,余锋,等. 作物秸秆还田对稻田温室气体排放效应的研究进展[J]. 杂交水稻,2021,36(5):1-7.
[17]Kalbitz K,Solinger S,Park J H,et al. Controls on the dynamics of dissolved organic matter in soils:a review[J]. Soil Science,2000,165 (4):277-304.
[18]何甜甜,王静,符云鹏,等. 等碳量添加秸秆和生物炭对土壤呼吸及微生物生物量碳氮的影响[J]. 环境科学,2021,42(1):450-458.
[19]武开阔,张哲,武志杰,等. 不同秸秆还田量和氮肥配施对玉米田土壤CO2排放的影响[J]. 应用生态学报,2022,33(3):664-670.
[20]秦越,李彬彬,武兰芳. 不同耕作措施下秸秆还田土壤CO2排放与溶解性有机碳的动态变化及其关系[J]. 农业环境科学学报,2014,33(7):1442-1449.
[21]李金,任立军,李晓宇,等. 不同秸秆还田方式对玉米农田土壤CO2排放量和碳平衡的影响[J]. 中国农业科学,2023,56(14):2738-2750.
[22]李彬彬,武兰芳,许艳艳,等. 秸秆还田土壤溶解性有机碳的官能团特征及其与CO2排放的关系[J]. 农业环境科学学报,2017,36(12):2535-2543.
[23]Shan J,Yan X Y. Effects of crop residue returning on nitrous oxide emissions in agricultural soils[J]. Atmospheric Environment,2013,71:170-175.
[24]Kan Z R,Zhou J J,Li F M,et al. Straw incorporation interacting with earthworms mitigates N2O emissions from upland soil in a rice-wheat rotation system[J]. Science of the Total Environment,2023,859(2):160338.
[25]胡天怡,车佳玥,胡煜杰,等. 秸秆还田和添加生物炭对热带地区稻菜轮作体系中淹水后土壤温室气体排放的影响[J]. 环境科学,2023,52(2):1-16.
[26]Wang N,Luo J L,Juhasz A L,et al. Straw decreased N2O emissions from flooded paddy soilsvia altering denitrifying bacterial community compositions and soil organic carbon fractions[J]. FEMS Microbiology Ecology,2020,96(5):fiaa046.
[27]Qiu H H,Wei W L. Crop straw retention influenced crop yield and greenhouse gas emissions under various external conditions[J]. Environmental Science and Pollution Research,2021,28:42362-42371.
[28]Sjgersten S,Wookey P A. Spatio-temporal variability and environmental controls of methane fluxes at the forest-tundra ecotone in the Fennoscandian mountains[J]. Global Change Biology,2002,8(9):885-894.
[29]王君,陈书涛,张婷婷,等. 增温对冬小麦根系残体及秸秆分解特性的影响[J]. 生态环境学报,2019,28(3):472-480.
[30]李晓莎,武宁,刘玲,等. 不同秸秆还田和耕作方式对夏玉米农田土壤呼吸及微生物活性的影响[J]. 应用生态学报,2015,26(6):1765-1771.
[31]胡文沛,张闯,胡春胜,等. 长期增温和施氮对华北平原农田土壤呼吸及其温度敏感性的影响[J]. 中国生态农业学报(中英文),2022,30(5):761-768.
[32]Wu G,Ling J,Liu Z X,et al. Soil warming and straw return impacts on winter wheat phenology,photosynthesis,root growth,and grain yield in the North China Plain[J]. Field Crops Research,2022,283(6):108545.
[33]Zhang L H,Chen Y N,Zhao R F,et al. Soil carbon dioxide flux from shelterbelts in farmland in temperate arid region,northwest China[J]. European Journal of Soil Biology,2012,48(9):24-31.
[34]张婷婷,陈书涛,王君,等. 增温及秸秆施用对豆—麦轮作土壤微生物量碳氮及细菌群落结构的影响[J]. 环境科学,2019,40(10):4718-4724.
[35]刘艳,陈书涛,刘燕,等. 增温对农田土壤碳氮循环关键过程的影响[J]. 中国环境科学,2013,33(4):674-679.
[36]任宏芳. 气候变化背景下秸秆还田方式对大豆土壤温室气体排放及相关酶活性的影响[D]. 太谷:山西农业大学,2021:1-2.
[37]Eusufzai M K,Tokida T,Sugiyama S,et al. Effect of rice straw application on CH4 emission in continuous and recently converted paddy fields[J]. Journal of Agricultural Meteorology,2011,67(3):185-192.
[38]王鸿飞,吴怡慧,张瑞,等. 水稻秸秆添加对不同种稻年限黑土CH4排放特征的影响[J]. 土壤通报,2022,53(6):1421-1430.
[39]江瑜,管大海,张卫建. 水稻植株特性对稻田甲烷排放的影响及其机制的研究进展[J]. 中国生态农业学报,2018,26(2):175-181.
[40]Jiang Y,Qian H Y,Huang S,et al. Acclimation of methane emissions from rice paddy fields to straw addition[J]. Science Advances,2019,5(1):eaau9038.
[41]Qiang X C,Yuan H L,Gao W S. Effect of crop-residue incorporation on soil CO2 emission and soil microbial biomass[J]. The Journal of Applied Ecology,2004,15(3):469-472.
[42]Chen C,Chen D L,Pan J J,et al. Application of the denitrification-decomposition model to predict carbon dioxide emissions under alternative straw retention methods[J]. The Scientific World Journal,2013,2013:851901.
[43]Jiang J Y,Huang Y,Zong L G. Influence of water controlling and straw application on CH4 and N2O emissions from rice field[J]. China Environmental Science,2003,23(5):552-556.
[44]邹建文,黄耀,宗良纲,等. 不同种类有机肥施用对稻田CH4和N2O排放的综合影响[J]. 环境科学,2003,24(4):7-12.
[45]Wang H H,Shen M X,Hui D F,et al. Straw incorporation influences soil organic carbon sequestration,greenhouse gas emission,and crop yields in a Chinese rice (Oryza sativa L.)-wheat (Triticum aestivum L.) cropping system[J]. Soil and Tillage Research,2019,195:104377.
[46]Guo L J,Zhang L,Liu L,et al. Effects of long-term no tillage and straw return on greenhouse gas emissions and crop yields from a rice-wheat system in central China[J]. Agriculture,Ecosystems & Environment,2021,322:107650.
[47]蒙世协,刘春岩,郑循华,等. 小麦秸秆还田量对晋南地区裸地土壤-大气间甲烷、二氧化碳、氧化亚氮和一氧化碳交换的影响[J]. 气候与环境研究,2012,17(4):504-514.
[48]黄琼,朱小莉,沈皖豫,等. 秸秆还田年限及还田量对稻田净温室效应的影响[J]. 土壤,2022,54(5):912-919.
[49]Zhang Z S,Guo L J,Liu T Q,et al. Effects of tillage practices and straw returning methods on greenhouse gas emissions and net ecosystem economic budget in rice-wheat cropping systems in central China[J]. Atmospheric Environment,2015,122:636-644.
[50]Webster F A,Hopkins D W. Contributions from different microbial processes to N2O emission from soil under different moisture regimes[J]. Biology and Fertility of Soils,1996,22(4):331-335.
[51]王保君,胡乃娟,顾泽海,等. 稻秆还田方式对稻麦轮作农田CH4和N2O排放的影响[J]. 南京农业大学学报,2017,40(3):367-375.
[52]朱晓晴,安晶,马玲,等. 秸秆还田深度对土壤温室气体排放及玉米产量的影响[J]. 中国农业科学,2020,53(5):977-989.
[53]于建光,李辉信,胡锋,等. 施用秸秆及接种蚯蚓对土壤颗粒有机碳及矿物结合有机碳的影响[J]. 生态环境,2006,15(3):606-610.
[54]宋依依,曹阳,段鑫盈,等. 秸秆还田深度对土壤团聚体组成及有机碳含量的影响[J]. 土壤,2022,54(2):344-350.
[55]陈慧,高丽萍,廖庆喜,等. 肥料减量深施对土壤N2O排放和冬油菜产量的影响[J]. 农业工程学报,2020,36(21):80-87.
[56]彭术,张文钊,侯海军,等. 氮肥减量深施对双季稻产量和氧化亚氮排放的影响[J]. 生态学杂志,2019,38(1):153-160.
[57]翟洋洋,程云湘,常生华,等. 干旱地区农田生态系统土壤温室气体排放机制[J]. 中国农学通报,2015,31(9):231-236.
[58]庞明亮,李波,姚名泽. 日光温室玉米秸秆深埋土壤温度变化规律研究[J]. 江苏农业科学,2017,45(16):231-237.
[59]王美琦,刘银双,黄亚丽,等. 秸秆还田对土壤微生态环境影响的研究进展[J]. 微生物学通报,2022,49(2):807-816.
[60]Heintze G,Eickenscheidt T,Schmidhalter U,et al. Influence of soil organic carbon on greenhouse gas emission potential after application of biogas residues or cattle slurry:results from a pot experiment[J]. Pedosphere,2017,27(5):807-821.
[61]Wang H H,Ren T B,Yang H J,et al. Research and application of biochar in soil CO2 emission,fertility,and microorganisms:a sustainable solution to solve Chinas agricultural straw burning problem[J]. Sustainability,2020,12(5):1922.
[62]王青霞,陈喜靖,喻曼,等. 秸秆还田对稻田氮循环微生物及功能基因影响研究进展[J]. 浙江农业学报,2019,31(2):333-342.
[63]Sun X,Han X A,Ping F,et al. Effect of rice-straw biochar on nitrous oxide emissions from paddy soils under elevated CO2 and temperature[J]. Science of the Total Environment,2018,628/629:1009-1016.
[64]Abid A A,Gu C,Zhang Q C,et al. Nitrous oxide fluxes and nitrifier and denitrifier communities as affected by dry-wet cycles in long term fertilized paddy soils[J]. Applied Soil Ecology,2018,125:81-87.
[65]韩紫璇,房静静,武雪萍,等. 长期秸秆配施化肥下土壤团聚体碳氮分布、微生物量与小麦产量的协同效应[J]. 中国农业科学,2023,56(8):1503-1514.
[66]谢婉玉,王永明,纪红梅,等. 秸秆还田种类对稻田N2O排放及硝化反硝化微生物的影响[J]. 土壤,2022,54(4):769-778.
[67]马玲,王丹蕾,韩昌东,等. 秸秆还田方式对东北农田土壤NH3挥发和N2O排放的影响[J]. 环境科学研究,2020,33(10):2351-2360.
[68]Liang B,Lehmann J,Solomon D,et al. Black carbon increases cation exchange capacity in soils[J]. Soil Science Society of America Journal,2006,70(5):1719-1730.
[69]Tan Z X,Lin C S K,Ji X Y,et al. Returning biochar to fields:a review[J]. Applied Soil Ecology,2017,116:1-11.
[70]Liu Y J,Bi Y C,Xie Y X,et al. Successive straw biochar amendments reduce nitrous oxide emissions but do not improve the net ecosystem economic benefit in an alkaline sandy loam under a wheat-maize cropping system[J]. Land Degradation & Development,2020,31(7):868-883.
[71]Liu Y X,Yang M,Wu Y M,et al. Reducing CH4 and CO2 emissions from waterlogged paddy soil with biochar [J]. Journal of Soils and Sediments,2011,11(6):930-939.
[72]张向前,张玉虎,赵远,等. 不同裂解温度稻秆生物炭对土壤 CH4、N2O 排放影响分析[J]. 土壤通报,2018,49(3):630-639.
[73]Huang Y B,Wang C J,Lin C,et al. Methane and nitrous oxide flux after biochar application in subtropical acidic paddy soils under tobacco-rice rotation[J]. Scientific Reports,2019,9(1):17277.
[74]Zhang A F,Cui L Q,Pan G X,et al. Effect of biochar amendment on yield and methane and nitrous oxide emissions from a rice paddy from Tai Lake plain,China[J]. Agriculture,Ecosystems & Environment,2010,139(4):469-475.
[75]Liu Y X,Wang Y F,L H H,et al. Effects of biochar application on greenhouse gas emission from paddy soil and its physical and chemical properties[J]. Journal of Appilied Ecology,2013,24(8):2166-2172.
[76]陈粲,包云轩,吕青,等. 基于DNDC模型的不同秸秆还田填埋深度下农田N2O气体排放模拟[J]. 安徽农业科学,2018,46(14):64-67,74.
[77]Ji B Y,Hu H,Zhao Y L,et al. Effects of deep tillage and straw returning on soil microorganism and enzyme activities[J/OL]. The Scientific World Journal(2014-05-26)[2023-01-10]. https://onlinelibrary.wiley.com/doi/epdf/10.1155/2014/4514 93?msockid=3df21057f2bd665525ea021cf6bd67c7.
[78]Zhong C,Liu Y T,Xu X,et al. Paddy-upland rotation with Chinese milk vetch incorporation reduced the global warming potential and greenhouse gas emissions intensity of double rice cropping system[J]. Environmental Pollution,2021,276:116696.
[79]潘孝晨,唐海明,肖小平,等. 不同耕作和秸秆还田模式对紫云英-双季稻土壤微生物生物量碳、氮含量的影响[J]. 生态环境学报,2019,28(8):1585-1595.
[80]Wang J Y,Jia J X,Xiong Z Q,et al. Water regime-nitrogen fertilizer-straw incorporation interaction:field study on nitrous oxide emissions from a rice agroecosystem in Nanjing,China[J]. Agriculture,Ecosystems & Environment,2011,141(3/4):437-446.
[81]He T H,Liu D Y,Yuan J J,et al. A two years study on the combined effects of biochar and inhibitors on ammonia volatilization in an intensively managed rice field[J]. Agriculture,Ecosystems & Environment,2018,264:44-53.
[82]Ji Y,Liu G,Ma J,et al. Effect of controlled-release fertilizer on nitrous oxide emission from a winter wheat field[J]. Nutrient Cycling in Agroecosystems,2012,94:111-122.
[83]倪玉雪,赵梦强,周晓丽,等. 硝化抑制剂对设施菜田土壤N2O和CO2排放及蔬菜产量品质的影响[J]. 福建农业学报,2022,37(3):381-389.
[84]Wang H T,Ma S T,Shao G D,et al. Use of urease and nitrification inhibitors to decrease yield-scaled N2O emissions from winter wheat and oilseed rape fields:a two-year field experiment[J]. Agriculture,Ecosystems & Environment,2021,319:107552.
[85]邱峰,景元书. 不同灌溉方式对稻田微气象特征及水稻生长的影响[J]. 江苏农业科学,2022,50(5):72-80.
[86]周胜,张鲜鲜,王从,等. 水分和秸秆管理减排稻田温室气体研究与展望[J]. 农业环境科学学报,2020,39(4):852-862.
[87]Nie T Z,Chen P,Zhang Z X,et al. Effects of irrigation method and rice straw incorporation on CH4 emissions of paddy fields in Northeast China[J]. Paddy and Water Environment,2020,18:111-120.
[88]Tang J,Wang J J,Li Z Y,et al. Effects of irrigation regime and nitrogen fertilizer managementon CH4,N2O and CO2 emissions from saline-alkaline paddy fields in Northeast China[J]. Sustainability,2018,10(2):475.
[89]Zhang G B,Ji Y,Ma J,et al. Intermittent irrigation changes production,oxidation,and emission of CH4 in paddy fields determined with stable carbon isotope technique[J]. Soil Biology & Biochemistry,2012,52:108-116.
[90]Fawibe O O,Honda K,Taguchi Y,et al. Greenhouse gas emissions from rice field cultivation with drip irrigation and plastic film mulch[J]. Nutr Cycl Agroecosyst,2019,113:51-62.
[91]于笑天,袁鹤龙,李涛,等. 秸秆还田与加气灌溉对水稻泡田期温室气体排放的影响[J]. 灌溉排水学报,2023,42(2):60-65.
[92]邸超,李海波. 稻田碳减排措施研究进展[J]. 现代农业科技,2023(14):17-20.
[93]徐祥玉,张敏敏,彭成林,等. 稻虾共作对秸秆还田后稻田温室气体排放的影响[J]. 中国生态农业学报,2017,25(11):1591-1603.
[94]Abutoama M,Abdulhalim I. Angular and intensity modes self-referenced refractive index sensor based on thin dielectric grating combined with thin metal film[J]. IEEE Journal of Selected Topics in Quantum Electronics,2017,23(2):72-80.
[95]罗加伟,钱开国,徐博,等. 稻虾共作模式下龙虾品种和养殖密度对CH4和N2O排放的影响[J]. 农业环境科学学报,2023,42(8):1852-1859,封2.
[96]傅志强,黄璜,廖晓兰,等. 养鸭数量对CH4排放的影响[J]. 生态学报,2008,28(5):2107-2114.
[97]邓晓,廖晓兰,黄璜,等. 湿地稻-鸭复合生态种养对甲烷菌种群数量影响的研究[J]. 环境污染与防治,2004,26(5):393-395,398.
[98]温婷,赵本良,章家恩. 稻鸭共作中CH4和N2O排放规律及影响因素[J]. 农业环境科学学报,2020,39(7):1442-1450.
[1]肖娥芳.湖北城乡一体化进程中农村碳排放及其影响因素分析[J].江苏农业科学,2013,41(04):317.
[2]张蕾,贾凤伶.国内外低碳农业发展经验及对天津的启示[J].江苏农业科学,2013,41(06):8.
Zhang Lei,et al.Developmental experience of low-carbon agriculture in home and abroad,and its enlightenment for Tianjin[J].Jiangsu Agricultural Sciences,2013,41(18):8.
[3]姚义,谢成林,周兴涛,等.苏中地区秸秆还田直播稻10 500 kg/hm2生育指标及生产技术规程[J].江苏农业科学,2014,42(09):73.
Yao Yi,et al.Fertility indicators and technical orders of straw returning direct-seeding rice in 10 500 kg/hm2 level in middle Jiangsu[J].Jiangsu Agricultural Sciences,2014,42(18):73.
[4]季红娟,戴正元,赵步洪,等.小麦秸秆还田对稻米蒸煮食用品质的影响[J].江苏农业科学,2013,41(12):55.
Ji Hongjuan,et al.Effect of wheat straw returning back to soil on cooking and eating quality of rice[J].Jiangsu Agricultural Sciences,2013,41(18):55.
[5]胡林林,贾俊松.2011年江西旅游业能耗和二氧化碳排放估算[J].江苏农业科学,2014,42(01):310.
Hu Linlin,et al.Estimation of energy consumption and carbon dioxide emission for tourism industry of Jiangxi Province in 2011[J].Jiangsu Agricultural Sciences,2014,42(18):310.
[6]马鹏,陶诗顺,黄晶,等.小麦秸秆还田方式对四川主推水稻品种产量的影响[J].江苏农业科学,2016,44(04):115.
Ma Peng,et al.Effect of wheat straw returning method on yield of Sichuan main push rice varieties[J].Jiangsu Agricultural Sciences,2016,44(18):115.
[7]吴元华,王永,石屹,等.冬牧70黑麦秸秆还田对烟田土壤氮素矿化的影响[J].江苏农业科学,2016,44(05):506.
Wu Yuanhua,et al.Effect of rye “Dongmu 70” straw turnover on nitrogen mineralization of soil in tobacco field[J].Jiangsu Agricultural Sciences,2016,44(18):506.
[8]王志春.秸秆预处理后集中还田对农作物及土壤的影响[J].江苏农业科学,2016,44(06):480.
Wang Zhichun,et al.Effects of straws centralized returning back to field after pretreatment on crops and soil[J].Jiangsu Agricultural Sciences,2016,44(18):480.
[9]李学平,刘萍.深旋耕秸秆还田对内陆盐碱地土壤肥力和作物产量的效应[J].江苏农业科学,2016,44(01):133.
Li Xueping,et al.Effects of deep rotary tillage and straw returning to field on soil fertility and crop yield of inland saline-alkali land[J].Jiangsu Agricultural Sciences,2016,44(18):133.
[10]刘其涛.中国农业碳排放效率的区域差异——基于Malmquist-Luenberger指数的实证分析[J].江苏农业科学,2015,43(09):497.
Liu Qitao.Regional difference of Chinas agricultural carbon emissions efficiency—Based on empirical analysis of Malmquist-Luenberger index[J].Jiangsu Agricultural Sciences,2015,43(18):497.